Thursday, January 20, 2022

In Appreciation Of Electrons

I periodically gather postings about similar subject matter and put them together in a compound posting. Here is a book-length compound posting all about electrons. If you cannot read it now then just read the introduction.

INTRODUCTION

You probably know that you are reading this blog, as well as using your phone and computer, thanks to electrons. All electronic and electric devices are based on the movement of electrons.

But the way in which all that we know is dependent on electrons goes far beyond that. An atom is composed of three subatomic particles, protons, neutrons and, electrons. The nucleus of the atom is composed of protons and neutrons with electrons in orbitals around the nucleus.

The elements are defined by the number of protons in the nucleus. Almost all of the mass in matter comes from the nucleus, and sunlight and starlight comes from nuclear fusion. But, other than that and nuclear devices, all of the effects that the nature of atoms has on us comes from electrons.

The materials that we deal with are almost always compounds, composed of molecules, rather than elements composed of atoms. Molecules are atoms held together by sharing or exchanging electrons. The nucleus of the atom is not involved in chemical processes, which includes combustion, cooking and digestion, only the electrons.

Atoms are held together by electric charges. There are two opposite charges, negative and positive. The basic rules of the charges are that opposite charges attract while like charges repel. Protons have a positive charge while electrons have a negative charge, that are equal to but opposite of each other. This results in an attraction of opposite charges that holds the electrons of the atom in orbitals around the nucleus.

By far the vast majority of the inside of an atom is empty space. Relative to the compact size of the nucleus the electron orbitals of the atom are far out in space. Yet when atoms are in contact with each other they do not merge together because of electron repulsion. The outermost electrons of each atom are what is actually in contact and, being both negatively-charged, they repel one another because like charges repel. This keeps atoms that are pressed together separate.

Nuclear fusion, upon which we depend for sunlight and all elements heavier than hydrogen and helium, is actually governed by electrons. Ordinarily the mutual repulsion of the electrons of atoms that come into contact keep the atoms separate, because electrons are all negatively-charged. But if a vast amount of matter comes together by it's mutual gravity this electron repulsion can be overcome and smaller atoms are fused together into larger ones, this is what forms a star. The new larger atom contains less internal energy than the smaller atoms that were fused together to form it. The excess energy is released as radiation and this is why stars shine.

Weight is based on electrons. Mass is the amount of matter in something while weight is the effect of gravity upon the mass. If the movement of the nucleus, where the vast majority of an atom's mass is concentrated, when attracted by gravity was not limited by the electron repulsion when the atom came into contact with another atom then there would be mass, but no such thing as weight.

When we push or pull something the movement is governed by electrons. Almost all of the mass that we are working against is contained in the nucleus of the atoms, but the pushing or pulling is governed by electron repulsion so that the atoms that are pressed against each other do not merge together, even though the vast majority of the inside of each atom is empty space.

I think we should all have an appreciation of electrons.

TABLE OF CONTENTS

1) ELECTRON REPULSION AND BINDING ENERGY

2) THE INACCESSIBLE STRUCTURES OF ELECTRONS

3) ELECTRON DEPENDENCY

4) THE INTERPRETATIONS OF QUANTUM PHYSICS

5) THE MYSTERY OF SPIN

6) THE ELECTRONIC WAVE MODEL OF ELECTRON ORBITALS



1) ELECTRON REPULSION AND BINDING ENERGY

We know that energy can never be created or destroyed, but only changed from one form to another. This brings us to a question about the nuclear binding energy which binds the like-charged protons of the nucleus together in an atom. Where did this binding energy come from? What kind of energy was it before lighter atoms were crunched together into a larger atom? If it is true that energy can never be created or destroyed, but only changed in form, then there must be an answer to this. It must have been some other type of energy before it was binding energy.

Materials composed of lighter atoms tend to be lower in density then those composed of larger atoms. While this may seem to make sense, it really doesn't. The density should actually be the same regardless of whether it is composed of larger or smaller atoms.

The example that I use was of a box filled with ball bearings. The box should end up weighing about the same regardless of whether the ball bearings were large or small. I did not actually fill a box with ball bearings but I calculated that, no matter what the size of the ball bearings, the empty space remaining in the box would be the same. Therefore, the box should end up weighing about the same regardless of the size of the ball bearings.

But when smaller atoms are crunched together into larger atoms by the tremendous heat and pressure in the centers of stars, there must be less overall electron repulsion among the larger atoms simply because there was less overall surface area and binding energy is a direct function of surface area. More smaller atoms will have more overall surface area and thus more electron repulsion. This is what holds the atoms apart so that materials composed of lighter atoms are less dense.

238 hydrogen atoms eventually get crunched together to form one uranium atom. The reason that uranium is far more dense than an equivalent mass of hydrogen is that there is so much less electron repulsion, even though there is no significant change in actual mass. There is also the factor that larger atoms take up proportionally less space than lighter atoms because there is more opposite charge attraction pulling inward, from both more positively-charged protons in the nucleus and more negatively-charged electrons in orbitals, and this compresses the larger atom.

Electron repulsion is simply the mutual repulsion between negatively-charged electrons in the outer shells of adjacent atoms. Remember that like charges repel while opposite charges attract. This is what keeps matter intact, because atoms cannot merge into one another due to this. This is also why matter and antimatter mutually annihilate, antimatter has positively-charged positrons in it's orbitals instead of negatively-charged electrons so that there is no such repulsion between matter and antimatter.

Radiation released by the sun and the stars is actually the former orbital energy of electrons as they are crunched into protons to form neutrons. That is the only way to explain why the binding energy per nucleon actually increases as we move to heavier elements, at least up to iron. It is true that some of the mass or the nucleus is actually transformed into binding energy, as we move up the binding energy curve, but it still requires energy to overcome the mutual repulsion of like-charged nuclei so that the nuclear force can take over and apply binding energy to hold the nucleus together.

But where does this ever-increasing binding energy in progressively heavier nuclei in the star, up to iron, come from? Energy can never be created or destroyed, but only changed in form, so there must be an explanation of where this energy came from. There is only a certain amount of energy in the star to be changed from one form to another and, as time goes on and lighter atoms are continuously crunched into larger ones, the total binding energy within atoms within the star just keeps increasing.

But what about our principle of electron repulsion and density? Electron repulsion resists gravity, it holds back the crunching of smaller atoms together by the gravitational mass of the star. If it can resist one of the basic forces of nature, then it must be energy. Just as we use the energy in fuel to launch a rocket or aircraft in opposition to gravity, electron repulsion is energy that resists gravity.

Distance is equivalent to energy because we can see that a higher satellite orbit is a higher-energy orbit and an object that falls a greater distance on earth will impact the surface with greater energy. If distance is equivalent to energy this must mean that surface area is also equivalent to energy. When two or more smaller atoms are crunched together in stars the new larger atom has less overall surface area than the atoms that were crunched together to form it. The excess energy is released as radiation and that is why stars shine.

The binding energy that holds the nucleus of an atom together against the mutual repulsion of the like-charged protons in the nucleus is also energy. That is why it is called binding energy. In fact, the binding energy in the nucleus is the exact opposite of the electron repulsion that keeps atoms apart until it is overwhelmed by the gravitational mass of the star. Electron repulsion uses the mutual repulsion between like charges to keep atoms apart, while the binding energy in the nucleus keeps the atom together by overcoming the mutual repulsion of the like-charged protons. The the short-range nuclear force can then take over and convert some of the mass of the nucleus into binding energy.

Can you see what I am moving toward here? The electron repulsion between atoms is the exact opposite of the binding energy that holds atoms together. As the star progresses in crunching smaller atoms into larger ones, the overall electron repulsion of all atoms in the star decreases because there is less overall atomic surface area, while the total nuclear binding energy in the star increases because as atoms get heavier the binding energy per nucleon increases, according to the binding energy curve in elements up to iron and nickel.

We also know that energy can never be lost or destroyed, but only charged in form. This means simply that the energy in electron repulsion must have gone somewhere, and the binding energy in the nuclei must have come from somewhere. At the sub-atomic scale, there can be no such thing as energy inefficiency so the energy cannot just get "lost" somewhere. We must be able to see the results of whatever form that energy is changed to.

If you guessed that it is the energy in the electron repulsion that makes material composed of smaller atoms less dense and resists the crunching of atoms together that gets transformed into the energy that overcomes the mutual repulsion of positively-charged nuclei of lighter atoms being crunched together so that the short-range nuclear force can convert some of the mass of the nucleus into the binding energy that holds the atomic nuclei together, then you are absolutely correct. 

As lighter atoms are crunched together within stars, there is progressively less electron repulsion. There are fewer electrons in orbitals of atoms, but progressively more neutrons as electrons are crunched into protons to form neutrons. There is the energy released as radiation, but yet there is more binding energy within the nuclei. It must all form an equation.

Remember, once again, that the energy of electron repulsion is not directly itself transformed into binding energy in the nucleus. But the energy that was in electron repulsion is reversed so that it can force the nuclei of light atoms close enough together so that the short-range nuclear force can take over and convert some of the mass of the nucleus into the binding energy which permanently holds the nucleus together.

It is easier to explain how the former orbital energy (just like a satellite has orbital energy) of electrons is transformed into radiation then it would be to explain how it it turned into binding energy. It is also easier to explain how the energy in electron repulsion between atoms is transformed into the energy which forces nuclei together than it would be to explain how it is turned into radiation.

This is why I maintain here that the energy in electron repulsion gets converted into the inward energy that makes it possible for the nuclear force to convert some of the mass into binding energy as many smaller atoms are crunched together into fewer larger ones. The many smaller atoms have more total energy of electron repulsion but the fewer larger atoms have more total binding energy.

It is why I also maintain that the fewer larger atoms have fewer total electrons in orbitals than the many smaller atoms. Since there is energy in the orbitals of these electrons, energy must have been released as electrons were crunched into protons to form neutrons.

A uranium atom, for example, has 238 total nucleons in the nucleus but only 92 protons and electrons. This started out as 238 hydrogen atoms with one proton and one electron, meaning that 146 electrons got crunched into protons to form neutrons. Much of that former orbital energy must have gotten released as radiation, even though most electrons in the uranium atom are in higher energy level orbitals than they were in the beginning, as electrons in hydrogen atoms.

The orbital energy of the electrons in higher orbitals would have also come from the same source as the energy which forces nuclei together. When two smaller atoms are crunched together into a larger one, there would not be enough room in the lower orbitals for all of the electrons in the new atom. Some of them would form a higher orbital shell, and the higher energy of that shell would have come from the same former energy of electron repulsion that was being converted to the inward energy that forces nuclei together.

It is this electron repulsion that actually drives the life-cycle processes within stars. It gets progressively more difficult to crunch atoms together by gravity as the atoms get heavier, and this determined the life-cycle of the star.

2) THE INACCESSIBLE STRUCTURES OF ELECTRONS

As far as we can tell electrons are mere point particles of negative charge with no internal structure that we can discern. We can see that the protons and neutrons in the nucleus of the atom are composed of quarks, but there is apparently no such internal structure for electrons. But let's stop and consider this carefully.

How do we measure and look into things? We can receive electromagnetic waves, such as light, and can sense magnetism and electrical forces as well. But electromagnetism is the way that we can receive information about the world around us.

Not only is electromagnetism the way that we can receive information about the world around us but the only way we can receive that electromagnetism is by it's effect on electrons. The photoelectric effect, for example, that enables us to see results when the energy in electromagnetic radiation can knock an outer electron in an atom out of it's orbital.

The electrons in the outer orbitals have the highest energy and additional energy from the radiation may be enough to knock it out of the atom altogether. This causes a flow of electrons that the nerves in our eyes can sense or we can measure with electronic equipment.

Because we can only see by receiving electromagnetic waves, that puts certain limits on our vision. An optical microscope is limited by the wavelengths of light to a magnification of about 1400 x. Any magnification beyond this is impossible because the wavelengths of light that we see are too long to convey the necessary information. We can get around this limitation by using an electron microscope, which uses a beam of electrons instead of visible light.

Since we do not actually see an object, but only the light emitted or reflected by the object, that brings about the phenomenon of optical illusions. That is another factor in our vision that there may be conditions in which the electromagnetic waves that our eyes receive do not accurately convey what we are looking at.

The classic optical illusion is a rainbow. When the sun is at our back and there are droplets of water in the air up ahead, if light is refracted twice within the droplets so that it comes back to us it will break white light down into it's component colors. Since shorter wavelengths are refracted more than longer ones the colors are separated.

The optical illusion that we see the most often is the blue sky. There is no blue wall as it appears. Objects reflect the wavelengths of electromagnetic radiation that are about the same as their wavelength. The fine particles of dust that are small enough to remain airborne in the atmosphere are of a scale that reflects blue light, the shortest wavelength of light. The blue light is reflected all around and that is why the sky appears blue.

At evening, when the sun is low in the sky, it's light comes at us through a greater depth of atmosphere. The result of this is that the blue light is scattered away altogether so that only the light at the opposite end of the scale of visible light remains. This is red light and is why sunsets appear as red. If we look at the boundary region between night and day from out in space, we can see a line of blue light that was scattered away.

But all of this is an optical illusion because we are seeing light that has been refracted by the atmosphere so that it does not represent a physical object that it has been reflected or emitted by. The fact that light can be refracted, as well as reflected or emitted, is generally what brings about optical illusions.

Another optical illusion of refraction is the apparent shimmering water mirage that is sometimes seen on the road up ahead on a hot day. But when we arrive at where the water seems to be, we find that it has moved further back so that we never actually reach it. That is caused by the light being refracted by heated air rising from the road.

The interface between water and air also brings an optical illusion. If you look at something below the surface of the water, it is not exactly where it seems to be because water and air have different indexes of refraction. You can see this by how a pole that you hold and put into the water seems to bend where the air meets the water.

So if we are dependent on electromagnetism for information about the world around us, and it's effect on electrons is the only way that we can receive this electromagnetism, isn't it possible that there might be other "illusions" or limitations in the information that we receive?

What about electrons themselves? We are absolutely dependent on electrons, and the fact that they can be made to flow as an electric current by being knocked out of electron orbitals, to receive information. If the nature of light, as electromagnetic waves, brings limitations due to wavelength and optical illusions, then what about the nature of electrons?

Have we ever thought about how the fact that we can only receive information by way of electrons might affect our understanding of the electrons themselves?

We perceive electrons as simply negatively-charged points with no discernible internal structure at all. But we use electrons as "bits" in receiving and processing information. This information is brought to us by whole electrons and never by anything smaller than an electron. Electrons themselves are the smallest "bits" in the receiving and processing of information.

So how can electrons be anything but simply a negatively-charged point? By using whole electrons as the smallest "bits" or information we are limited to determining that an electron is there, but cannot see what it might be made of or it's internal structure. This is not true of protons or neutrons, in which we can discern an internal structure, but only of electrons.

It is reminiscent of trying to get an optical microscope to magnify something more than about 1400 x. Electromagnetic waves are reflected by objects that are about the same as their wavelength and this means that we cannot directly see objects smaller than this wavelength. But we can get around this, seeing at least an image of an object smaller than this, by using an electron microscope that shoots a beam of electrons at an object.

But we cannot do this if we want to further observe electrons themselves. Electrons are the only "bits" that we have to receive and process information. This means that the only way we can discern whatever internal structure the electron might have is to use a "bit" of information that is smaller than the electrons themselves but will somehow interact with them and that is something that, at this point, we do not have.

We can never learn everything about our world because we are limited by the process that we use to receive information. We cannot perceive electrons as anything but point particles, having no internal structure, simply because we are dependent on these electrons for information.

3) ELECTRON DEPENDENCY

How about some outside the box thinking about a perplexing scientific issue?

Quark Theory has been around since the mid-1960s and is widely accepted. According to the theory there are six quarks, plus the corresponding antiquarks of antimatter. But only two quarks are really important to us, the up and the down quarks. It is sometimes said that, if all quarks except the up and down quarks disappeared tomorrow, only particle physicists would notice.

Quarks are theorized to combine together to form subatomic particles called hadrons. Atomic nuclei are composed of protons and neutrons, both of which are hadrons composed of quarks. The third component particle of atoms are electrons. But electrons are a different class of particles, known as leptons, which are not composed of quarks.

Quarks may seem to be an arcane topic to you but they really aren't. Your body is made of atoms, which are made of protons, neutrons and, electrons. A proton is 1,836 times the mass of an electron and a neutron 1,837 times the mass. An atom, except hydrogen, contains at least twice as many protons and neutrons together as electrons. This means that virtually all of the mass of your body, except maybe one part in three thousand, is composed of quarks, all of which are combined together to form protons and neutrons.

The component particles of the atom have integral electric charges. An electron has a charge of -1. A proton has a charge of +1. A neutron has a charge of zero.

Quarks have fractional, rather than integral, electric charges. An up quark has a charge of +2/3 while a down quark has a charge of -1/3. Two up quarks combined with one down quark produces a proton with a net electric charge of +1. Two down quarks with one up quark produces a neutron with a net electric charge of zero.

In the postwar period so many new particles were discovered that it was referred to as the "Particle Zoo". It was felt by many that there couldn't really be this many fundamental particles. As it turned out, there wasn't. According to Quark Theory many of these particles were actually composed of the even more fundamental quarks.

Quark Theory has been very widely accepted. The only complication seems to be that an individual quark has never been observed. Quarks are only seen when combined together to form protons and neutrons.

Not long after Quark Theory emerged, quark stars were theorized to exist. A star is an equilibrium between the inward pull of the gravity of the star's mass and the outward push from the energy released by fusion in the star's center. A star forms when enough matter comes together by gravity to overcome the electron repulsion between atoms so that smaller atoms are crunched together into larger ones. The new larger atom contains less internal energy than the smaller atoms that were crunched together to form it. The excess energy is released as radiation and that is why stars shine.

But a star eventually reaches the point where it requires more force to break atoms apart than is released by their fusion. That point is iron and it is as far as the ordinary fusion process goes. Without the outward force of the energy released by fusion the star may collapse so that the structures of the atoms themselves are crushed.

What happens at this point is that the electrons of the atoms are crunched into the protons to form neutrons, which is what happens in ordinary fusion. This forms what is known as a neutron star, although it is no longer technically a star because fusion is not taking place.

Since the structure of an atom is mostly empty space, and since the structures of it's atoms have collapsed, a neutron star is composed of extremely dense material. A spoonful of material from a neutron star is believed to weigh billions of tons.

The collapse of the star's atoms brings it's matter into extremely close quarters. This increases the force of gravity still further and brings about further collapse. The result is that the structures of the neutrons collapse into the unimaginably dense mass of a black hole. The material of a black hole is about two hundred times as dense as a neutron star.

The theory is that, since neutrons are composed of quarks, there should be a stage in the progressive collapse of matter, between neutron stars and black holes, that had the star composed of quarks and would be known as a quark star.

But like individual quarks themselves no quark stars have ever been found. Plenty of neutron stars and plenty of black holes have been found, but no quark stars.

There is, of course, the possibility that Quark Theory is wrong and there is no such thing as quarks. But the theory explains so much and is so widely accepted.

I have another explanation of why no quarks or quark stars have ever been found and cannot see that this explanation has ever been offered. The explanation was not difficult to arrive at, it just involved some thinking outside the box.

What if the reason we have never detected quarks or quark stars is not that they are not there, but that we can't detect them?

Once again it comes back to the basic presumption in science that we have an unbiased view of the universe. What if we don't have an unbiased view of the universe? In other sciences, like geology and chemistry and everyday physics, it may not make a difference. But in cosmology it does make a difference. My cosmology theory is that we do not have an unbiased view of the universe, we see it as we do not only because of what it is but also because of what we are.

We rely on electromagnetic radiation, which includes visible light, for our information about the universe. As the name implies electromagnetic radiation is based on electric charges. In my cosmology theory empty space consists of a perfectly alternating checkerboard of negative and positive electric charges, in multiple dimensions. The basic rules of electric charges are that opposite charges attract while like charges repel. The charged particles of matter, such as electrons, consist of like charges held together against their mutual repulsion by energy. This energy shows up as the intrinsic energy in matter known as the Mass-Energy Equivalence. It is why Einstein's famous formula, E = MC squared, has mass being convertible into energy.

In contrast to matter electromagnetic waves, including light, consist of disturbances, caused by energy, in the checkerboard of alternating electric charges comprising empty space. In my cosmology theory energy always goes to overcome the basic rules of the electric charges. Matter forms when the mutual repulsion of like charges is overcome by energy, to produce charged particles such as electrons. Electromagnetic radiation is formed when energy overcomes the attraction between opposite charges in space.

When electromagnetic waves encounter matter they "bounce off", or are reflected, by the electric charge of the electrons on the outside of atoms. This is why matter reflects light and we can see things. It doesn't matter if the outside of the atom has a positive or negative electric charge, it would be reflected off antimatter in the same way as ordinary matter.

Has anyone ever thought that the reason we cannot detect quarks and quark stars is not that they are not there but due to the nature of the electromagnetic radiation upon which we depend for information?

What if the production and reflection of electromagnetic radiation as we know it depends on integral electric charges? By "integral" I mean integers or whole numbers. A proton has an electric charge of +1, an electron of -1, and a neutron of 0.

Remember that quarks, in contrast, have fractional electric charges. An up quark has a charge of +2/3 and a down quark of -1/3. What if electromagnetic radiation, as we know it, only works with integral electric charges and not with fractional charges?

Electromagnetic radiation is produced by the movement of integral electric charges. The only way that we can see or detect electromagnetic radiation is for it's energy to knock electrons out of their orbitals in atoms, this produces an electric current in our eyes or detection equipment.

Why is it that we can see or detect the electromagnetic radiation from matter as long as it is composed of integral electric charges, but it seems to "vanish" and we can detect it only by it's gravity when it breaks down into fractional electric charges? Doesn't that make it seem clear that the "invisibility" of the fractional electric charges is due more to the nature of electromagnetic radiation than to the matter itself?

There are so many optical illusions on earth, blue sky, rainbows, red sunset, etc. So why should we expect that electromagnetic radiation from space will always convey the universe just the way it is?

Electromagnetic radiation, including light, is produced by the movement of integral electric charges, which are almost always electrons with a charge of -1. They are reflected by integral electric charges which are, again, almost always electrons. The only way that we can receive electromagnetic radiation is for it's energy to knock electrons out of their orbitals, in our eyes or detection equipment.

It appears that electromagnetic radiation, as we know it, is based on integral electric charges. When the radiation encounters something that is not composed of integral electric charges, which simply means the charge on an electron or a proton whether it be negative or positive, it is as if the matter is speaking a different "language" that our familiar electromagnetic radiation doesn't "understand".

The way we see it is that the gravity of the black hole is so great that it doesn't allow even light to escape. But what that amounts to, once again, is the basic presumption in science that we have an unbiased view of the universe and that our observations and measurements are completely reliable in our gaining understanding of how the universe works. But the fact is that we are dependent on electromagnetic radiation to convey information to us and one of the things that we must take into account is the nature of that radiation.

This adds a new dimension to electromagnetic radiation. Not only is there the wavelength, from long radio waves to short gamma rays, but there is also the electric charges that produce, reflect and, receive the waves, from the integral charges on electrons and protons to the fractional charges, in thirds, on quarks.

Since we are dependent on the electromagnetic radiation involving electrons for our information let's call it "Electron Dependency". It is the reason that we cannot detect individual quarks or quark stars or black holes.

One obvious conclusion that some might come to is that this explains "Dark Matter". Matter that is gravitationally active but cannot be seen because it is not composed of integral electric charges.

Here is a link to another line of thinking, my hypothesis that black holes actually are the missing quark stars:

https://markmeeksideas.blogspot.com/2021/04/the-missing-quark-stars.html?m=0

We can discern nothing about the structure of electrons themselves. They seem to us to be nothing more than point particles. But, once again, that is a matter of our perspective and that we do not have an unbiased view of the universe. We have seen that we cannot see electrons as anything other than mere points simply because it is electrons that we depend upon to convey information. 

4) THE INTERPRETATIONS OF QUANTUM PHYSICS

Never has there been a topic that is so simple but that we have so over-complicated as Quantum Physics.

THREE CLASSIFICATIONS OF PHYSICS

We could say that there are three separate classifications of physics. The most familiar is "classical physics". This is the everyday physics of how the physical universe operates that is found in an ordinary physics textbook.

But there are also two other classifications of physics. These are commonly referred to as Relativity and Quantum Physics (or Quantum Mechanics). The reason that these two are separate classifications is that they are about mechanisms and realities that cannot be explained by ordinary physics. 

Relativity tends to involve large scales, on the astronomical level, with objects traveling at a significant portion of the speed of light. Quantum Physics, in contrast, involves small scales such as electrons in their orbitals in atoms. These two are also incompatible with each other.

What makes Relativity different is the speed of light. Albert Einstein's Special Theory of Relativity, published in 1905, explained how the speed of light is the only absolute constant, nothing can ever travel faster than it, and everything else is variable, or relative, hence the name "Relativity".

In Relativity, when an object travels at a significant portion of the speed of light, changes take place that cannot be explained by ordinary physics. Time slows down and the length of the object shortens. At the speed of light, time would stop and the object would have no length at all. But the speed of light itself never changes. It sounds strange but has been proven repeatedly, in many different ways. The GPS satellites, for example, have to take relativistic effects into account to work properly.

But when we come to Quantum Physics, it has it's own set of rules that are beyond explanation by ordinary physics, as well as being completely different from those of Relativity.

In Quantum Physics, the observer is very important. When we observe or measure a quantum interaction, the observation itself becomes a part of the interaction. The quantum interaction will turn out differently according to whether it is being observed, or not being observed. This is completely alien to both "classical" physics and to Relativity.

Another important factor in Quantum Physics is uncertainty. For example, we can express probabilities of where an electron is likely to be found in it's orbital within an atom, but can never predict with certainty. This is also completely different from "classical" physics, as well as Relativity.

But in Quantum Physics, the speed of light that is all-important in Relativity is not even a factor at all. It has been shown that information moves absolutely instantaneously between two entangled photons, no matter how far apart they are.

Three concepts that are central to an understanding of Quantum Physics are wave function, wave-particle duality and, of course, uncertainty. Another concept is that of superposition, two quantum states can be combined to create a third state. "Entanglement" refers to sharing a quantum state, usually two photons.

The central experiment of Quantum Physics is the famous Two-Slit Experiment. It is similar in nature to a diffraction grating, that splits white light into it's component colors, but it involves the all-important observation. If a photon, a single particle of light, is passed through one of the two parallel slits but it is not observed, we can tell by the interference pattern that will be produced on a screen behind the two slits that a photon also passed through the other slit at the same time.

But if we observe or measure the experiment in any way, a photon will have passed through only one of the two slits and there will be no interference pattern on the screen. This shows how the observation is a vital part of Quantum Physics.

In "classical physics", or in Relativity, light or any electromagnetic radiation is a wave. But in Quantum Physics, there is the wave-particle duality where light has the properties of both waves and particles. The "particles" of light are referred to as photons.

The idea of quantum computing, by the way, is to make use of the greater information in quantum bits, referred to as "qubits". An ordinary computer bit must be either a 1 or a 0, for on and off, and this is how all data is stored. But a qubit, in a superposition of multiple quantum states, has many more possibilities and can thus hold much more information.

INTERPRETATIONS OF QUANTUM PHYSICS

Quantum Physics, also called Quantum Mechanics, unlike Relativity or "classical" physics, has different ways to interpret a quantum interaction. These possible interpretations can be divided into two broad categories, the "collapse" or the "non-collapse" interpretations.

The most popular interpretation of quantum interactions seems to be the Copenhagen Interpretation. A quantum system will be in a superposition of all possible quantum states, referred to as eigenstates, at once. But when it is observed, it will "collapse" into only one eigenstate, or quantum state. The "collapse" may be due to observation or to other factors. This one state is the one that we will see or measure.

The leading "non-collapse" interpretation is the Many Worlds Interpretation, which used to be called the Everett Interpretation. In this interpretation of a quantum interaction, every possible outcome must exist, with each event acting as a branch. In this interpretation, it is decoherence that causes us to see only one outcome instead of all of them. It is not the same as a "collapse" of a wave function because all other outcomes must still exist somewhere. Coherence is where two quantum systems share a quantum state, decoherence is loss of coherence and a breaking into two quantum states.

Albert Einstein, the author of Relativity, was also involved with Quantum Physics. He actually won his Nobel prize for the photoelectric effect, which is quantum in nature, not for Relativity. It was Einstein who developed the concept of the photon, or single particle of light. But he was convinced of the absolute invariability of the speed of light and referred to the instantaneous transmission of information as "spooky action at a distance". Of the uncertainty principle that is central to quantum physics, he is reported to have said "God does not play dice.

The place that my cosmology theory takes in all of this is simple, and it makes Quantum Physics simple. Imagine a one-dimensional string in space, which is what an electron actually is, and we depend on electrons to receive information by electromagnetic radiation. Now imagine a two-dimensional wave interacting with it from a perpendicular direction. That is all that we need to know.

Waves are actually two-dimensional. They seem to us to fill three-dimensional space because our eyes are so large in comparison with the wavelengths of light. We can tell this because, if light is interacting with electrons, a higher-frequency (shorter wavelength) light, which contains more energy, will push each electron with more force but will not push any more electrons than the lower-frequency light. If we apply a brighter light, but at the same wavelength, the light will push more electrons but will not push each one with any more force.

This shows that light consists of individual two-dimensional waves that do not completely fill three-dimensional space. A wave has to be of at least two dimensions. Light seems to get dimmer as we get further from it's source because we are receiving fewer of the waves, in accordance with the Inverse Square Law. But each individual wave that we receive is not actually dimmer.

In contrast with other matter, when we start dealing with electrons is when things start to "get quantum" in nature. Each electron in an orbital has a four-part quantum "address" and no two electrons in an atom can have the same quantum "address".

The Four Principal Quantum Numbers and energy levels of electrons in orbitals are expressed in integral numbers, or integers, showing that this is the most basic of energy levels. That is what "quanta" means, the most basic of quantities.

Ordinary nuclear physics, involving the nucleus of the atom, does not involve the rules of Quantum Physics, only the electrons do. The essential quantum interaction is a two-dimensional wave of light interacting with a one-dimensional electron which, in my theory, is a string with the wave interacting with it from a perpendicular direction. For us to measure or see anything, light must impart some of it's energy to matter. Since matter is made of atoms and electrons are on the outsides of atoms, this means interacting with electrons.

If a material has it's outer electrons only loosely attached to it's atoms, so that the energy in light can knock electrons out of their orbitals, the light will cause a chemical reaction or an electric current to flow. That means that we can see, or measure, or photograph light.

The simple basis of Quantum Physics is that when a two-dimensional wave interacts with the one-dimensional string of an electron, it must impart the energy of one of it's two dimensions to the electron. That is how we see or measure anything to do with light, and is known as the photoelectric effect. The other dimension must be left but, since the electron is a one-dimensional string, this one remaining dimension of the light will appear to us to be a particle, and that is what we refer to as a photon.

The "collapse" of a quantum wave function from all possible quantum states into only one, when it is observed or measured, that is the Copenhagen Interpretation and all other "collapse" interpretations, has a very simple explanation. The electrons in our eyes or measuring devices that the two-dimensional wave of light must interact with are really, according to my cosmology theory, one-dimensional strings in space, which we perceive as particles because our consciousness is moving along the bundles of strings comprising our bodies and brains and we see only a moment at a time, at right angles to the direction of our movement.

The energy of one dimension of the wave is absorbed by the electron, which is necessary for us to be able to measure of see it, and the other dimension remains. Since only one dimension of light cannot still be a wave, that is where photons come from, the one-dimensional remains of a two-dimensional wave which now resembles a particle like an electron in nature.

The many points on the wave represent all possible states of the information carried by the wave and, depending on the point on the wave that contacts the electron, always at a right angle, the wave function appears to "collapse" into only one state, which is defined by the point on the wave that contacts the electron.

Imagine a two-dimensional circle being reduced to a one-dimensional line, but the state of the "collapse" to one dimension would depend on which of the infinity of diameters on the circle we took away to leave only a line perpendicular to that remaining as the one-dimensional line.

This is all that a "wave function collapse" amounts to, our vision or observation by interaction with a one-dimensional electron, taking away one dimension of the energy of the wave so that it "collapses" into a one-dimensional photon. All possible eignestates (quantum states) are every point of the wave before the collapse. The one remaining after the collapse is a line of light, a photon, that was perpendicular to the point on the wave that encountered the electron.

That is why the observer is so important in Quantum Physics, the observation which is usually the wave function encountering an electron string that is perpendicular to it and absorbs one of it's two dimensions. A photon resembles an electron in form because both are one-dimensional strings, except that the photon has no electric charge.

THE MANY WORLDS INTERPRETATION

Aside from the "collapse" interpretations of Quantum Physics", of which the Copenhagen Interpretation is the most popular, there is also the "non-collapse", of which the Many Worlds Interpretation is the most popular.

The Many Worlds Interpretation, as the name implies, states that, when a wave function is observed, it does not collapse because the other possible states still must exist somewhere. Rather than a "collapse", it is decoherence that causes one state to become separated from the others. Decoherence is defined as the loss of unity of a quantum state, so that it splits in two. Entangled photons, as we saw above, share a quantum state so that information is instantaneously passed from one to another. But that can be lost due to environmental factors.

But isn't "collapse" and decoherence really the same thing, the absorption of one dimension of a two-dimensional wave function by an electron that it encounters? According to our observation, the wave seems to "collapse" into a one-dimensional photon. But we could also say that there was a decoherence of the two dimensions of the wave, so that they were separated by the electron.

The Many Worlds Interpretation considers each event as a "branch". The quantum system seems to go in one direction, but the other directions that it could have gone in must still exist somewhere, maybe in another universe. There is not a "collapse", so that the other directions or quantum states no longer exist, but only a decoherence as our observation separates the one quantum state that we see from the others.

The Many Worlds Interpretation is something that we can spend hours pondering, as I am sure many others have. But I see it as us seeing the universe in our own terms and from our own perspective. The solution to this interpretation is just as simple as for the "collapse" interpretations, and that solution is to see that everything is really information.

Suppose that we throw a ball, and it bounces off a wall. But the ball could have kept on going if the wall hadn't been there. That means that there must be another universe where the ball keeps going, and doesn't bounce off the wall.

But we can easily measure the acceleration of the ball to determine it's course if the wall hadn't been there. That information is there whether the ball bounces off the wall or not. And the ball itself is just information. According to my cosmology theory, everything is composed of infinitesimal electric charges with space being a multi-dimensional checkerboard of alternating charges and matter being any concentration of these charges.

So it really isn't necessary to have a multitude of universes, with a ball in each, going through every single course of events that it possibly could have. If everything is really just information, then all we need to know is the original acceleration of the ball and the information of all possible courses of events that the ball could have taken are still there, all within our one universe. We see ourselves made of matter so we presume that there must be a ball made of matter like us in each possible universe but matter, like space, is just information.

The Many Worlds Interpretation is similar in nature to the pattern of information that I call "The One And The Many". The one is what is, the many are what possibly could have been but weren't. Addresses are an ideal example. Something is defined by what it is not.

THE UNCERTAINTY PRINCIPLE

What about the "Uncertainty Principle" in Quantum Physics? That is simple too. Consider radio triangulation. If we receive, with a directional antenna, only a momentary signal from a radio source, we can tell what direction the source is in but cannot tell how far away it is or whether it is moving. For that, we would need more than one measurement. In time, to see if the source is moving, and from another location, to determine how far away the source was.

This is why we have two eyes, to be able to estimate how far away things are.

In the same way, since the electrons in our measuring devices can absorb only one dimension of a two-dimensional wave we can, for example, predict where a given electron might be found in an orbital, but can never say with absolute certainty because all we have is an instantaneous one-dimensional measurement.

HIDDEN VARIABLE INTERPRETATIONS

Some other interpretations of Quantum Physics can be described as "hidden variable" interpretations. This means that we can never tell for sure what is happening in a quantum interaction because we are not capable of seeing all of the variables. My theory accommodates that because what we perceive as time is actually a fourth dimension of space that we cannot access at will because the particles of our bodies are actually one-dimensional strings that are aligned primarily in this dimension. The other three we can move in at will.

The reason that two photons can remain entangled, after a single photon is split in two by passing it through a crystal, is that the crystal adds it's spatial dimensions to it so that a one-dimensional photon takes on a "V" forms with the point of the "V" being the place where it was split by the crystal and the two points of the "V" representing the two entangled photons, between which information passes instantaneously. But the point of the "V" is in the past dimension of the dimension of space that we perceive as time from the points of the "V".

THE GREAT SIMPLICITY OF QUANTUM PHYSICS

Can you see how simple Quantum Physics really is? In my cosmology theory, it is fully explained as being even simpler than Relativity.

All that we need to know is that when a two-dimensional wave encounters a one-dimensional electron, which is the only way we can see or measure the wave, it must necessarily absorb the energy of one dimension of the wave. The remaining dimension of the wave is what we refer to as a photon, which behaves as a one-dimensional particle. This is why light is said to have the nature of both a wave and a particle.

The wave function, representing a multitude of all quantum states, thus appears to "collapse" into only one such state when we observe it. There is always the uncertainty factor in quantum measurements because we are observing a two-dimensional wave function, light being how we receive information, in only one dimension.

Picture a one-dimensional line in space. That is an electron, but the motion of an electron in it's atomic orbital resembles a wave. The direction of the line is the dimension of four-dimensional space that we perceive as time.

Now picture a two-dimensional wave contacting the electron line at a perpendicular angle. One of the dimensions of the wave is the direction in which it is traveling and the other is perpendicular to it. Both of the dimensions of the wave are perpendicular to that of the electron. The electron absorbs the dimension of the wave that is the direction in which the wave is moving, the remaining dimension of the wave then exists as a one-dimensional photon that is perpendicular to the line of the electron.

In the four-dimensional space of my cosmology theory, that still leaves one dimension because, so far, we have the two dimensions of the wave and the one of the electron. But light waves are two-dimensional in three-dimensional space. That is why light waves are said to have a certain polarity in space, like the hands on a clock. A polarizing filter only allows light waves with a certain polarity through.

Remember that this cosmology theory does not make the universe more complicated. It takes what looks complicated, because we over-complicate it, and makes it simple. There is the principle in physics known as Occam's Razor. This well-established principle is that the simplest explanation for something usually turns out to be the best explanation.

This cosmology theory can get long, but that is only because it explains so much that is otherwise unexplained. The essence of this theory can be described in two paragraphs. Following is the brief abstract that I use for the cosmology theory.

"My cosmological theory has the universe as not-quite-parallel strings of matter aligned mostly in one direction in four-dimensional space, although there could be many more than these four dimensions. The direction in which these strings of matter are primarily aligned is the one that we perceive as time, along which our consciousnesses move at what we perceive as the speed of light. We can only see perpendicular to the bundles of strings of matter comprising our bodies and brains. The original two-dimensional sheet of space, amidst the multi-dimensional background space, disintegrated in one of it's two dimensions as one pair of it's opposite sides came into contact. Due to charge migration, to seek a lower energy state, one side was positive in charge and the other was negative. This brought about the matter-antimatter mutual annihilation that we perceive as the Big Bang. The energy in the disintegrating dimension, from the tension between adjacent opposite electric charges, was released. The remaining dimension then consisted of very long strings of infinitesimal cross-section, that we perceive as the particles of matter today. Some of the energy released by the disintegrating dimension went into "welding" the charges of the remaining dimension together as strings of matter. We perceive these strings as particles because our consciousnesses are moving along the bundles of strings composing our bodies and brains, at what we perceive as the speed of light, and we can only see at right angles to our strings.

So, the basics of my theory is a two-dimensional sheet of space, which formed amidst the multi-dimensional background space by the same kind of opposite charge induction, disintegrating in one of it's two dimensions as one pair of it's opposite sides came into contact to create the matter-antimatter explosive mutual annihilation that we perceive as the Big Bang, which began the universe, and which scattered the remaining one-dimensional strings of matter out across space to form the universe that we see today. The strings of matter from the original two-dimensional sheet were scattered across four dimensions of the background space".

Ever since developing this simple theory, I have been adding all of the cosmic mysteries that it neatly explains. These explanations are in the posting on this blog, "The Theory Of Stationary Space", which is the name of the theory, and in the earlier part of the theory on the cosmology blog, www.markmeekcosmology.blogspot.com .

In Relativity, the reason that the speed of light is so absolutely constant is that it is the speed at which our consciousness moves along the bundles of strings comprising our bodies and brains. We see Quantum Physics due to the nature of our vision, using one-dimensional electrons to interact with two-dimensional light wave forms.

All that we really need to know about the greatly over-complicated topic of Quantum Physics is that an electron is a one-dimensional string aligned in the dimension of space that we perceive as time. When a two-dimensional light wave encounters the electron from a perpendicular angle the electron will, under the right conditions, absorb one dimension of the two dimensions of the wave. The remaining dimension of the wave now has the nature of a particle like the electron, and is what we refer to as a photon.

The right conditions for the electron absorbing a dimension of the wave is described in section 10) of "The Theory Of Stationary Space" as "THE FINE STRUCTURE CONSTANT". This is why, when light encounters an electron, the electron will absorb it only one out of every 137 times.

5) THE MYSTERY OF SPIN

All particles comprising ordinary matter have spins of 1 / 2. Spin refers to the number of times that a particle must rotate to get back to the original configuration. This is the realm of quantum physics and cannot be explained by ordinary physics. A spin of 1 / 2 means that the particle must be rotated twice to get back to the original configuration.

Particles of ordinary matter consist of two families of particles, quarks and leptons. Electrons are leptons and the protons and neutrons of atomic nuclei are both composed of three quarks each. Compound particles like protons and neutrons, each composed of quarks, are known as baryons.

Ordinary matter that is composed of quarks, the protons and neutrons, are made of an odd number of quarks. An up quark has a charge of + 2 / 3. A down quark has a charge of - 1 / 3. Two up quarks and a down quarks make up a proton with a net charge of + 1. Two down quarks and an up quark make up a neutron with a net charge of zero.

Leptons and baryons together, the components of ordinary matter, are known as fermions. All composite particles made up of quarks are called hadrons which, aside from baryons also include mesons, which is a pair of a quark and an antimatter quark. But mesons are not stable.

Besides fermions, with their spin of 1 / 2, there are other particles that have a spin of 1, known as integral spin because 1 is an integer. These particles only have to rotate once to get back to their original configuration. But these are not matter particles, they are known as bosons and carry forces. The best-known boson is a photon.

The major difference in properties between fermions and bosons is exclusivity. Fermions are exclusive while bosons are not. If a particle has to spin twice to get back to it's original configuration that means it is exclusive. If a particle has to spin only once to get back to it's original configuration that means it is not exclusive.

Exclusive means that the particles, or the matter of which they are composed, cannot occupy the same space at the same time. That is why ordinary matter particles have a spin of 1 / 2. Electrons in an atom follow what is known as the Pauli Exclusion Principle. Each electron has an "address" consisting of a four-part quantum number. No two electrons in the atom can have exactly the same quantum numbers.

Particles that are not exclusive, bosons such as photons, follow the set of rules called "Bose-Einstein Statistics". Particles that are exclusive, fermions such as electrons and protons and neutrons composed of quarks, follow the set of rules called "Fermi-Dirac Statistics".

The spin is the fourth of an electron's quantum numbers. There are two possible spin directions, up and down. Electrons ordinarily exist in pairs, with the same quantum numbers but with opposite spin. Not all electrons are paired. In some materials, the orbitals of the unpaired electrons can be lined up with a magnetic field. Materials with the orbitals of unpaired electrons lined up are known as magnets.

Spin can be best seen in the following moving illustration. Or you can see it at the Wikipedia article, "Spin-1/2"

https://en.wikipedia.org/wiki/Spin-%C2%BD#/media/File:Spin_One-Half_(Slow).gif

If we attach cables to each side of a rotating cube, so that the cables won't tangle, the cube must rotate twice to get back to the same configuration. That is because the cables have two possible configurations, and will alternate between the two with each rotation. We can refer to the two configurations of the attached cables as "clockwise" and "counterclockwise". We could also say that the cables alternate between an "S" and a "Reverse S".

But since the two possible configurations are equal, there must be an alternation between the two, which requires that there be two rotations to get back to the original configuration.

But notice that we need the attachment of these cables to demonstrate 1 / 2 spin. We could not tell the spin of a particle just by looking at it, if we could look at it. "Getting back to the original configuration" means the configuration of the space around a spinning particle.

But how can the empty space around the particle have a configuration, and how can the configuration be affected by the spin of the particle? Empty space seems to be just nothingness, without any kind of configuration.

But remember my cosmology theory, detailed in the compound posting on this blog "The Theory Of Stationary Space". Everything, both space and matter, is composed of a near-infinity of infinitesimal electric charges. Empty space is a perfectly alternating checkerboard pattern of negative and positive charges in multiple dimensions.

This is the most logical configuration because the basic rules are that opposite charges attract and like charges repel. But there is energy in the universe and like charges can be held together by energy, and this is what matter is. Energy can also cross space as a wave displacement of the alternating checkerboard pattern of negative and positive charges, and this is what electromagnetic waves are.

An electron, for example, is, in my cosmology theory, a concentration of negative charges held together by energy. There is the well-known mass-energy equivalence, a certain amount of mass being equivalent to a certain amount of energy. The equivalence of mass and energy is what Einstein's famous formula, E = MC squared is about, the inter-convertibility of mass and energy. This is why concentrations of like charges, such as the electron, have mass but empty space doesn't.

But if the electron, or any other matter particle, is composed of concentrated electric charge, and the space around it is composed of an alternating checkerboard pattern of the same charges, then shouldn't a change in the particle, such as it's spin, also have an effect on the arrangement of the electric charges in the space around it?

Imagine the electron in space. The electron is a concentration of negative charges, held together by energy against like-charge repulsion which is why the electron has mass. The space adjoining it is alternating negative and positive charges. The negatively-charged electron affects those charges in that it pulls the positive charges in space somewhat toward it, and pushes the negative charges in space somewhat away from it.

Now suppose the electron begins to spin, as it does. It's effect on the charges around it will be pulled along with the spin just like the cables attached to the spinning cube in the illustration.

https://en.wikipedia.org/wiki/Spin-%C2%BD#/media/File:Spin_One-Half_(Slow).gif

There has to be two possible configurations of the space around it simply because there are two electric charges of which the space is composed, negative and positive. A line of electric charges in space that adjoin the electron might be negative-positive-negative-positive... or it might be positive-negative-positive-negative... Since the two arrangements are equal, the space around the spinning electron must alternate between the two.

That means that the electron must spin twice before the original configuration of electric charges is restored, and that is why we say that the electron, and all other matter particles composed of a concentration of electric charges, have a spin of 1 / 2.

This is what the two opposing spins, up and down, really means. One is negative-positive-negative... and the other is positive-negative-positive... There are only two possible spins because there are only two electric charges.

This makes sense but then how can there be other particles with a spin of 1?

The answer involves the exclusivity of a concentration of like electric charges that are held together by energy, such as electrons. If we bring two electrons close together, they will repel each other because like electric charges repel. That is what makes them exclusive, and no two electrons in the same atom can have the same four quantum numbers for the same reason.

The reason that matter doesn't just pass through other matter is electron repulsion. As the atoms of the two pieces of matter come in contact, the negative charges in the electrons of each repel each other. This is why you can stand on the floor without passing right into the floor, since the interior of an atom is by far mostly empty space.

Suppose that there was an electron of concentrated positive charges, instead of negative. What if we brought that together with the usual electron?

There actually is a positively-charged electron. It is called a positron. But it is the antimatter version of an electron. Antimatter is the same as ordinary matter except that the electric charges are reversed. If we brought the two together, both would vanish in a great burst of energy as the negative and positive charges composing each react and rearrange themselves back into the alternating negative and positive charges of empty space, and the energy that was holding the like charges of each together is released.

So if everything, space and matter, is composed of electric charges and if particles that are "exclusive" are composed of concentrated like charges, held together by the energy of the mass-energy equivalence, then the only remaining source of any other kind of particle is the electromagnetic waves that can carry energy across space. These waves are a displacement of the alternating negative and positive electric charges that make up space, but not a concentration of the charges in the same way as matter.

Such a wave would have to be two-dimensional because they have two specific components, wavelength and amplitude. Since we are composed of atoms, which have electrons in their orbitals, the only way that we can sense or see things must involve electrons. But, in my cosmology theory, electrons are one-dimensional strings in four-dimensional space that we perceive as particles because we can only see three of these dimensions, the other we perceive as time.

But if waves are two-dimensional, and the electrons by which we must receive the waves are one-dimensional, that means that there must be one dimension of the wave remaining after the electrons in our eyes or measuring equipment absorb the energy of one of the two dimensions of the wave, which is the only way that we can see or sense anything.

Since particles, such as electrons, are really one-dimensional strings, and since one dimension of a two-dimensional wave must remain after our electrons have absorbed the energy of the other dimension of the wave, that means there must be one-dimensional remnants of waves that would seem to us to be particles, such as photons. This explains why light is said to have both a wave and a particle nature.

However, unlike particles of matter such as electrons, these "particles" of electromagnetic waves are not concentrations of either negative or positive charge. They are a displacement of the usual checkerboard pattern of alternating charges but there is no reason for them to have more negative or more positive charge.

These are just mass-less and charge-less one-dimensional packets of energy. But that would mean that they would not have the same effect on the electric charges of the surrounding space, as the electron described above. This also means that they would not be exclusive, many of them could pass through the same space with minimal effect on one another. Without this effect, there would be no reason for them to have to spin twice to get back to the same configuration of surrounding electric charges.

This mystery of particle spin is all a simple matter of the four spatial dimensions in my cosmology theory. In my cosmological theory, matter consists of one-dimensional strings of like electric charges, held together against the usual like-charge repulsion by energy. When this rotates what is happening is that the points on it's surface are moving in a perpendicular direction to the direction of alignment of the string. This means that the rotation, as we perceive it, of the one-dimensional string involves two dimensions.

But there are four dimensions of space. The rotation, or spin, of the string of matter involves only two of these dimensions. Two is half of four and that is why the string, as the particle as we perceive it, has a spin of 1 / 2. How much simpler could it be?

Everything that is spinning has a spin of 1 from it's own perspective. The only way that it could be seen differently is from the perspective of the surrounding space, and it would only be different if there were somehow a different number of dimensions involved, and there would only be a different number of dimensions involved if this cosmological theory of mine is correct.

Something cannot be seen as having a spin of 1 as seen in four dimensions if the spin only involves two dimensions. It will have to spin twice to get back to the original configuration. This is not true from it's own perspective but only from the perspective of the surrounding dimensions of space.

The particles, as we see them, that have the spin of 1 / 2 are the particles of matter, the leptons and hadrons that are collectively known as fermions. But there are other particles that have a spin of 1, these are known as bosons. The best-known boson is a photon, a "particle" of light.

All electromagnetic radiation is waves. Individual waves must have two dimensions because they have two components, wavelength (or frequency) and amplitude. But it is often said that light has a particle nature as well as a wave nature. What happens is that the only way we can receive light or other electromagnetic radiation is through it's interaction with electrons which, in my cosmological theory, are one-dimensional strings. This interaction means the electron, in our eyes or instruments, absorbing the energy of one of the two dimensions of the electron. This leaves the other dimension of the light wave as what we see as a one-dimensional particle, similar in form to a particle like an electron.

In this cosmological theory everything, both space and matter, is composed of near-infinitesimal negative and positive electric charges. Space is an alternating checkerboard of negative and positive in multiple dimensions, since the basic rules of the charges are that opposite charges attract while like charges repel. But a concentration of like charges can be held together by energy, and that is what strings of matter are. Energy is equivalent to mass, as pointed out by Einstein, and the energy holding the like charges of matter together is the familiar Mass-Energy Equivalence.

Electromagnetic waves do not have this mass because they are energy, not holding a concentration of like charges together like matter, but a disturbance in the alternating checkerboard pattern of negative and positive electric charges of empty space. The waves are not actually electromagnetic but they seem to be because they disturb the otherwise perfectly alternating pattern of electric charges in space. These charges comprising space usually balance out to zero but the underlying electromagnetism is exposed by the disturbing action of the wave.

But this means that while fundamental strings of matter are a concentration of a single electric charge, either positive or negative, the photons contain both electric charges although not in the perfectly alternating checkerboard pattern of empty space. The dimensions of space are composed of electric charges.

So this means that a one-dimensional string of matter is one charge moving in one perpendicular dimension as it spins. While a one-dimensional remnant of an electromagnetic wave is two charges moving in one perpendicular dimension as it spins. Again, each spin thus involves two dimensions.

The math is simple. Two dimensions x one electric charge = 2. Two dimensions x two electric charges = 4. We can multiply electric charges by dimensions because dimensions of space are themselves composed of electric charges.

There are four dimensions of space involved. For matter, 4 / 2 = 2. For photons, or other bosons, 4 / 4 = 1. So particles of matter seem to have to spin twice to get back to the original configuration while bosons only have to spin once.

Consider the example of a square. We are aware that the square is two-dimensional so that we can go from one corner to the diagonally opposite corner in one movement. But suppose that there was someone who could be aware of only one dimension. They could not cross the square diagonally as we did. They would have to go along one side of the square to the corner, and then along the perpendicular side of the square from there to get to where we are. We would require only one movement to cross the square, but they would require two.

That is what particles are like with regard to rotation. The dimensions within which the particles, actually strings in four dimensions, rotate are composed of electric charges. Bosons contain both electric charges while matter particles contain only one or the other. That is why rotating bosons only have to spin once to get back to the same original configuration while particles of matter have to spin twice.

6) THE ELECTRONIC WAVE MODEL OF ELECTRON ORBITALS

Induction is the property of an electrical current in a conductor that induces a current in another conductor, if there is relative motion between the two. This concept is familiar to anyone around Niagara Falls, where hydroelectric power is generated. There is also the self-inductance of a coil of wire in a circuit. The initial current induces a secondary current that opposes the original current. This has the effect of "smoothing out" the original current. A coil for this purpose is known as a choke coil.

In another area of basic electronics, we know that an electromagnetic wave that we call a radio wave is set up when an alternating electric current, which is a movement of electrons, is made to flow with a high frequency in a circuit. An antenna is connected to the circuit to assist the propagation of the radio waves.

I got to wondering why these same principles wouldn't also apply to the orbitals of electrons within the atom. These two fundamentals of electronics, induction and radio wave creation, take place because of the nature of electrons, and the electrons in orbit around an atomic nucleus have exactly the same properties. My reasoning is that basic electronics should be able to provide a lot of insight into what goes on in electron orbitals within atoms.

If one or more electrons moving up and down in a radio antenna will set up an electromagnetic radio wave, then what about the electrons in orbit within atoms? Isn't it logical that these electrons would create electromagnetic waves also, considering that an orbit is a form of circuit?

My hypothesis is that, just as the current in a coil of wire induces another current that opposes the original current, electrons pair up and position themselves so that the electromagnetic waves that the two produce will cancel one another out. Electrons operate in pairs, with opposite spin. Notice the strong resemblance between an orbital pair of electrons and a waveform. All waves consist of crests and troughs, when a crest meets a trough of the same wavelength the two will mutually cancel one another.

Both electrons in a pair create waves, but with the crests and troughs of the waves inverted. This causes the two waves created by an electron pair to cancel one another out.

The Austrian physicist Wolfgang Pauli introduced the Pauli Exclusion Principle. This states that no two electrons in an atom can have the same quantum numbers, which define the energy levels of the electrons. The quantum numbers had been defined by another Austrian, Erwin Schrodinger.

Electron pairs are two electrons that have the same quantum numbers, but have opposite spin. I take that to mean that the two electrons in such a pair will produce electromagnetic waves that will completely cancel one another.

The two electrons position themselves to achieve this cancellation so that there will be no net wave produced because the wave produced by one electron can move the other electron in the pair, but not those in other orbitals with different quantum numbers because their waves are of a different wavelength. Electrons filling the orbitals in an atom first pair so that they match one another, and then they position themselves so that they cancel each other's wave.

Remember that our universe always seeks the lowest energy state. This is why an object falls when it is dropped. It requires less energy for it to fall than it does to maintain it in it's position. The same principle applies with all of physics. This is why electrons position themselves, being moved by the opposing electron in the pair, so that no net wave is produced. Generating electromagnetic waves requires energy, and the nature of the universe is that it always seeks the lowest energy state.

It may seem that having the shells and orbitals of electrons in atoms is, in itself, a violation of this seeking of the lowest energy state because this represents a higher energy condition than all of the electrons just crowding into the lowest shell, the one closest to the nucleus, which is also the lowest energy level for electrons in the atom. But then that would mean that the electrons would not cancel each other's waves, and the generation of waves would mean a higher energy state.

This also explains the basis of magnetism. In a magnet, there are unpaired electrons whose spin has been aligned so that the unpaired electrons all spin in one direction. Seen from one direction is the magnet's north pole and from the other the south pole. Opposite poles of two magnets strongly attract because their waves are cancelling out, thus producing a lower energy state and the energy that is saved is why the magnet is able to lift iron.

The waves of unpaired electrons with opposite spin will draw together and cancel one another in the process. Since waves are electromagnetic in nature, the two magnets with facing opposite poles will attract, just as opposite electric charges attract.

But all of this shows that electron waves must exist. Magnetism is when these waves have an influence outside the atom. Magnets can lift non-magnetized iron because the pole of the magnet, with unpaired electrons spinning in only one of two possible directions, will induce unpaired electrons in the non-magnetized iron to spin in the opposite direction and thus draw the two pieces of metal together. But the attraction between a magnet and non-magnetized iron is never as strong as that between the opposite poles of two equivalent magnets.

Now it becomes clear what happens when we try to force the like poles of two magnets together. The energy required is just the opposite of the attraction between two opposite poles, whose waves cancel out. Instead of crest meeting trough, we have crest meeting crest and trough meeting trough. Instead of cancelling out, and allowing the energy thus released to pull the two magnets together, this requires more energy to force the like poles together.

With this in mind, how do you suppose that electric motors and generators work? If we force the delocalized electrons in metal to move in one direction, by the application of a voltage or electromotive force, it must also align their directions of spin. My scenario here shows that it is actually the aligned direction of electron spin, rather then the simple movement of electrons, which makes it possible for an electric current to exert mechanical force in an electric motor. An electric generator is basically the reverse of an electric motor, with the mechanical force producing the current.

But an electric wire that was not in physical contact should not be able to exert any force on anything, regardless of current flowing through it, unless the electrons of that electric current were producing some kind of waves to transmit energy and force. If the spin of the electrons moving in the current were unaligned, they would simply cancel one another out and no net force would be exerted. Such a force, on magnetic material such as iron, could only be exerted by an electric current if the movement of the current also aligned the spin of the electrons, just as in a stationary magnet.

The same concept does not apply to a light bulb, or to the production of heat by electricity, because that energy is the result of the moving electrons losing energy by resistance in the wire. The lost energy has to go somewhere, and it shows up as heat.

But all of this shows that the Electronic Wave Model Of Electron Orbitals must be correct. We can see that these waves must be produced by electrons in their orbitals but, in non-magnets, we do not see any evidence of such waves. We know that electrons operate in pairs, with opposite spin, and the normal lack of evidence of such waves outside the atom can only mean that they cancel out.

This model explains why elements that have even numbers of both protons and electrons are more stable than those that have odd numbers. Even numbers of electrons in an atom are well-known to produce more chemical stability. It is because even numbers are necessary for complete pairing, and pairing is necessary for this wave cancellation. This concept also helps to explain why electron orbitals in atoms like to be either empty, full or, half full. It also explain why matter is said to have a wave nature, as well as a matter nature.

Metals differ from non-metals in that a number of atoms share their outer-shell electrons among themselves. These are known as delocalized electrons, and the group of sharing atoms is known as a crystal. In some metals, most notably iron, these shared electrons can be made to align their motion, rather than cancelling out the effect of their charges. We then see the effect known as magnetism, and why magnetism is related to electricity which is the movement of the electrons..

The electromagnetic waves that must be generated by an electron moving in an atomic orbital, just as an alternating current in a circuit and an antenna produces a wave, would not be readily detectable by us. The wave produced by a single electron, even if it was not cancelled out by it's opposing pair electron, would be exceedingly faint in the space beyond. If the wave had been produced by an unpaired electron, it would then be cancelled by the waves from other unpaired electrons.

While there must be alignment by electron pairs, there would be no such alignment with other electrons either within the same atoms or in other atoms. This means that, even if the waves did not cancel, they would dissipate out of phase and would not reinforce one another in materials other than magnets.

Furthermore we, and any equipment that we build and use, must necessarily be made of matter. These "electron orbital waves", as we will refer to them, would be of extremely high frequency and short wavelength. X-rays and gamma rays pass right through matter because the atom is actually mostly empty space, and these waves are fine enough to go right through at least the atoms of some elements.

Remember that electromagnetic waves are reflected by matter which is about the same size as the wavelength of the waves, meaning that waves of extraordinarily short wavelength can pass right through the electron orbitals of atoms. Waves from electron orbitals would be of far shorter wavelength than this, making most of these waves undetectable by any equipment made of matter.

I cannot see how these electron orbital waves would not exist. This explains the nature of electron orbitals in atoms ideally, and fits with the properties of electrons in basic electronics.

Thursday, January 13, 2022

Water In Winter

With the arrival of winter you may have wondered about a few things. 

We know that those fluffy cumulus clouds, and also the layer stratus clouds, are composed of water droplets. Only the high, wispy cirrus clouds are composed of ice crystals. But if the low clouds are composed of water droplets, how can they exist if the temperature is below freezing?

Why is there a nearly-infinite variety in snowflake patterns, and why are the rings that form on icicles exactly one centimeter apart?

We know that sand is rock that has been broken down into grains by the force of waves over long periods of time. My theory is that the size of sand grains is due not to the nature of rock but to the nature of water.

This and other things about water, including why heavy water is the ideal material for nuclear fusion, is explained in the following compound posting:

www.markmeeklife.blogspot.com/2012/11/water-made-really-simple.html?m=0

Thursday, January 6, 2022

Political Developments In America

So many millions of Americans watch Queen Elizabeth's Christmas message. Remember that royalty does not have to be official, it can be unofficial. I recognize Harry and Meghan as America's king and queen but see no need for it to be made official. Here is a link to "America And Royalty":

www.markmeeksideas.blogspot.com/2020/08/america-and-royalty.html?m=0

To brush up on ever-popular British royalty see "The Royal Story" and "Royal Observations", both December 2020.

As for the anniversary of the attack on the Capitol remember that it is impossible to really understand American politics without understanding it's original connection to the French Bourbon Dynasty, which was America's first ally and helped it gain independence. The attack on the Capitol was very much a reenactment of the Storming of the Bastille. A guillotine was even set up in Arizona during the attack.

The book-length posting that explains this is "America And The Modern World Explained By Way Of Paris", December 2015.

Thursday, December 30, 2021

Remembering Archbishop Desmond Tutu

There are two external factors about Archbishop Desmond Tutu and the end of Apartheid in South Africa that I have never seen before that I would like to add.

The first is Communism. The west disapproved of Apartheid and South Africa was, in many ways, an international pariah. It had long been banished from events like the Olympics.

But what the Apartheid government managed to do was to portray itself as a vital ally against Communism, at the height of the Cold War, and the black African organizations in the country that were opposed to it as having Communist sympathies. Western leaders like Ronald Reagan and Margaret Thatcher were willing to deal with it because it was a necessary ally against Communism.

But as that ceased to be a factor, toward the end of the 1980s, the Apartheid government realized that it couldn't go on like this. Is it only a coincidence that 1989 was when Communism came apart in eastern Europe, and it was also the year that the recently-deceased F.W. Deklerk began major reforms to Apartheid in South Africa? Mikhail Gorbachev should be a hero in South Africa.

The second factor is Mahatma Gandhi, who can be considered as the founder of modern India. Gandhi lived for a long time in South Africa. I cannot see it pointed out anywhere but Archbishop Desmond Tutu bore a striking resemblance to Mahatma Gandhi. Tutu was African and Gandhi was Indian but, other than that, the two could almost have been twins.

This was especially true after Archbishop Desmond Tutu shaved his head. I cannot help wondering if the reason for that, although not announced, was so that he would look more like Gandhi.

In India there were two prime ministers named Gandhi, the mother and son Indira and Rajiv Gandhi of the Congress Party that used to be powerful in India. They were not related to Mahatma Gandhi but I am sure that the name didn't hurt their political careers.

One thing that I can't help wondering about how history repeats itself is that Mahatma Gandhi was assassinated in India. Both of the prime ministers named Gandhi were also assassinated, and they were the only Indian prime ministers to be assassinated. The question is whether they still would have been assassinated if their names hadn't been Gandhi.

The legacy of Gandhi continued in South Africa. There was a president of South Africa that also closely resembled Gandhi, Jacob Zuma. In one photo that I saw he was holding his hands as if in prayer, just like Gandhi. Jacob Zuma is remembered for his association with an Indian business family, the Guptas, who he was accused of allowing to effectively run the country. Their names were even combined together as "Zupta". The Guptas left South Africa before Zuma was forced to step down.

Desmond Tutu certainly benefited, in the struggle against Apartheid, from being an Anglican Archbishop. Tutu and Nelson Mandela were the two great leaders in the struggle against Apartheid. So why was Mandela imprisoned for a long time but Tutu wasn't, even though he was critical of anyone that he thought deserved criticism no matter who they were?

It was because Desmond Tutu was an Anglican Archbishop. The Anglican Communion is the largest single Protestant denomination and the Apartheid government didn't want to make any more enemies than it already had.

Archbishop Desmond Tutu was a Christian leader. Unlike Nelson Mandela he had nothing to do with politics. Anyone was criticized who he thought deserved criticism. His involvement in the world went far beyond South Africa. He was especially popular across Africa, except with dictators like Robert Mugabe that he was harshly critical of.

Desmond Tutu graduated from King's College that we saw in the posting, "Along London's Royal Route" May 2018.

To read about the Anglican Church see "Why The U.S. And Canada Are Different" January 2016.

Thursday, December 23, 2021

Merry Christmas To Readers

Let's not let the latest variation of this virus ruin the holiday spirit.

The James Webb Space Telescope will be on it's way. It will be in orbit around the sun, unlike the Hubble Telescope which orbits the earth. This will make it possible for one side to always face the sun, where the solar panels will be located. The other side will always be extremely cold.

This makes it possible to operate infrared sensors. A lot of information comes from the universe in the form of infrared, or heat. It is very difficult to gather this information on earth, or in earth orbit, because it is drowned out by the heat all around us.

Remember that there was a posting years ago about how we could be getting a lot more information about the universe in infrared:

www.markmeekprogress.blogspot.com/2009/06/information-from-heat.html?m=0

Abortion Rights In America

Just a reminder of what is really happening in the move towards reversing decades of the right to an abortion in America.

As we saw in "The Great Revolution Of Our Time", what has happened is that the Iranian Revolution has arrived in America. Here is a link to it:

www.markmeeksideas.blogspot.com/2017/01/the-great-revolution-of-our-time.html?m=0

West Of Toronto

Just posting this to wish a very Merry Christmas to Toronto readers. Even if the border is essentially closed it was my Toronto readers that really launched this blog, and that will never be forgotten.

We have not yet finished our visit to the Toronto area. The area to the west of Toronto includes Mississauga, Oakville, Burlington and, Hamilton. We have seen the rest of "Toronto" in the visit by that name.

Here is Toronto's Pearson International Airport, with the skyline of Mississauga in the background. This is known as an efficient airport, I have taken off and landed here five times. Although I have been on an Air Canada flight only once. The last mishap that I can remember at this airport is the one with an Air France plane, in 2005. The plane was destroyed, but no one was killed.

This is where the Air India flight left from, in 1985, that was the deadliest bombing of an aircraft, and so many of the victims were from the Toronto area. This was part of India's internal conflict of the mid-1980s, following the raid on the Golden Temple by the Indian Army, and including the assassination of Prime Minister Indira Gandhi in retaliation for the raid. But we see how far India has come since that time.

The airport is named for the former prime minister, and native of the Toronto area, Lester Pearson. He was the prime minister when I lived as a child on the Canadian side of Niagara Falls, in the late 1960s. His successor was the father of the present prime minister.

There are multiple scenes following. To see the scenes, after the first one, you must first click the up arrow,^, before you can move on to the next scene by clicking the right or forward arrow, >. After clicking the up arrow you can then hide the previews of successive scenes, if you wish.

https://www.google.com/maps/@43.6766927,-79.6117758,3a,75y,90t/data=!3m8!1e1!3m6!1s-2A94DDzwpn0%2FVsWnIwy2zqI%2FAAAAAAABgxQ%2FqO-ESw7n1Uc7E5x5QW0Ml9pzRVoRUQSBACLIB!2e4!3e11!6s%2F%2Flh4.googleusercontent.com%2F-2A94DDzwpn0%2FVsWnIwy2zqI%2FAAAAAAABgxQ%2FqO-ESw7n1Uc7E5x5QW0Ml9pzRVoRUQSBACLIB%2Fw203-h100-k-no-pi-0-ya82.464264-ro-0-fo100%2F!7i8704!8i4352

Here are some more views of Mississauga starting in the food court of Square One, which is actually the largest mall in Ontario. The two buildings with the twisted shape are built that way purposely. They are condominiums, known as Absolute World.

https://www.google.com/maps/@43.5933479,-79.6423632,3a,75y,270h,90t/data=!3m8!1e1!3m6!1szacAZPE10vQAAAQfr8cjiA!2e0!3e2!6s%2F%2Fgeo1.ggpht.com%2Fcbk%3Fpanoid%3DzacAZPE10vQAAAQfr8cjiA%26output%3Dthumbnail%26cb_client%3Dmaps_sv.tactile.gps%26thumb%3D2%26w%3D203%26h%3D100%26yaw%3D69.83083%26pitch%3D0%26thumbfov%3D100!7i13312!8i6656

Here is some typical everyday scenery in Burlington, which is at the far western end of the Toronto metropolitan area.

https://www.google.com/maps/@43.3482498,-79.7948187,3a,75y,357.26h,90t/data=!3m8!1e1!3m6!1sBwjuPz53w3EAAAQWtEX7Uw!2e0!3e2!6s%2F%2Fgeo2.ggpht.com%2Fcbk%3Fpanoid%3DBwjuPz53w3EAAAQWtEX7Uw%26output%3Dthumbnail%26cb_client%3Dmaps_sv.tactile.gps%26thumb%3D2%26w%3D203%26h%3D100%26yaw%3D73.186455%26pitch%3D0%26thumbfov%3D100!7i13312!8i6656

Moving further west, we come to the city of Hamilton. The first thing that comes to mind are Stelco and Dofasco, the makers of steel which was the largest industries in Hamilton. Where do you suppose that the structural steel to make the buildings in Toronto came from?

Hamilton is built right on the Niagara Escarpment, with half of the city below the escarpment, and the other half above. Being as far west as one can go on Lake Ontario, and having a good natural harbour, it was the logical place for a city. The older part of the city, as well as the industrial sector, is below the escarpment.

These are some views of downtown Hamilton. Quite a bit of my early writing was done in the library that is attached to the mall at Jackson Square. My late wife and I would sometimes have lunch in the food court of the mall, and then visit the library.

https://www.google.com/maps/@43.2563067,-79.8679538,3a,75y,294.48h,89.51t,1.1r/data=!3m7!1e1!3m5!1s391k9cjKMz5iTRYSwHYK5A!2e0!6s%2F%2Fgeo2.ggpht.com%2Fcbk%3Fpanoid%3D391k9cjKMz5iTRYSwHYK5A%26output%3Dthumbnail%26cb_client%3Dmaps_sv.tactile.gps%26thumb%3D2%26w%3D203%26h%3D100%26yaw%3D14.749572%26pitch%3D0%26thumbfov%3D100!7i13312!8i6656

Hamilton is known for McMaster University, with it's own nuclear reactor.

https://www.google.com/maps/@43.2615623,-79.9187167,3a,75y,357.48h,90.83t,2.26r/data=!3m7!1e1!3m5!1s5YrTQQR1nJNmhOGGbbJwKQ!2e0!6s%2F%2Fgeo3.ggpht.com%2Fcbk%3Fpanoid%3D5YrTQQR1nJNmhOGGbbJwKQ%26output%3Dthumbnail%26cb_client%3Dmaps_sv.tactile.gps%26thumb%3D2%26w%3D203%26h%3D100%26yaw%3D266.30426%26pitch%3D0%26thumbfov%3D100!7i13312!8i6656

Finally, one town that I have always liked in Dundas. It appears as typical of small-town Ontario. The name is better known as one of the main streets of Toronto, with Dundas Square in the heart of Toronto, but this is the town that the street and square are named for.

https://www.google.com/maps/@43.2667441,-79.9587837,3a,75y,90h,90t/data=!3m7!1e1!3m5!1sLScEgaNpXfhu2aTtsBYlhA!2e0!6s%2F%2Fgeo1.ggpht.com%2Fcbk%3Fpanoid%3DLScEgaNpXfhu2aTtsBYlhA%26output%3Dthumbnail%26cb_client%3Dmaps_sv.tactile.gps%26thumb%3D2%26w%3D203%26h%3D100%26yaw%3D23.541088%26pitch%3D0%26thumbfov%3D100!7i13312!8i6656

Thursday, December 16, 2021

The Sign Of The Crab Nebula

With regard to the recent virtual summit between President Biden and Vladimir Putin over Ukraine remember that all of this, like so much else of the last thousand years of world history, goes back to the Great Schism of the year 1054. That was when the eastern domains of the Catholic Church split away to form what is now the Eastern Orthodox Church, and the world hasn't been quite the same since.

We saw in the compound posting, "The Aztec Prophecy" April 2018, that the brilliant light show in the sky, the exploding star that formed what we now call the Crab Nebula began just before this monumental split in the church that so-changed world history.

Was it a sign from God? It is described in the first section of "The Aztec Prophecy", 1) THE CRAB NEBULA AND GOD. That compound posting contains many prophecies. I named it "The Aztec Prophecy" because that is the one I thought of first.

I had been interested in science since childhood, starting with astronomy. Later, when I became a Christian and was studying it's history, the year 1054 sounded familiar. It turns out that the exploding star, so brilliant that it was easily visible in the daytime, was going on at exactly the same time as this momentous split in the church. I could not find that this had ever been pointed out.

If you have some time to read there is the book-length compound posting, "The House Of Holy Wisdom, Where The Modern World Began" January 2016. This posting explains the world-changing events that took place in the Hagia Sophia, including this Great Schism of 1054.

Remembering What Freedom Means

Two of the recent Nobel Prize winners really criticized the "misinformation", fake news, and the "toxic sludge" that social media has become. But I see this as the price of being free.

The only way to be free of the "fake news" that we encounter is to give someone the authority to decide for us what is and isn't "fake news". But then that person would have the power of dictatorship over us, deciding what information we received, and we would no longer be free. 

In a way it is easier to not be free than to be free, just let someone else do our thinking for us. Part of the price of being free is to have to be informed and sort through all the information that we receive in order to determine what is and isn't "fake news".

Of course humans are biased on what "fake news" is. If we see an opinion that we already agree with, or that casts us in a good light, we are more likely to accept that opinion without scrutiny. But if we see an opinion that we do agree with, or which casts us in a bad light, we are more likely to dismiss it as "fake news".

Another part of the price of being free is to have people around us who do not agree with us. We say that we want to be free but we want to be surrounded by people that "fit in" and agree with us. The trouble is that if we are free, because we live in a free society, then the people around us are also free and they may not think the way we do. Freedom does not mean to agree but to agree to disagree. A lot of people have difficulty with this.

There are two possible slants on freedom, "freedom to" and "freedom from". A simple example is cigarette smoking. Should one have "freedom to" smoke, or should they have "freedom from" second-hand smoke? The answer is a matter of opinion and so freedom comes down to politics as far as the exact slant it will take.

Few people want completely unhindered "freedom to", that would be anarchy or the "Law of the Jungle". So first we agree on the laws that everyone has to follow, and then we have "freedom to" from that point.

Freedom is not a panacea, it doesn't necessarily create an ideal society. It allows us to be whatever we are. The "toxic sludge" that some have derided social media as becoming can only be a reflection of what we are.

There is a compound posting, "The Meaning Of Freedom". If you would like to review it here is a link to it:

www.markmeeksideas.blogspot.com/2021/07/the-meaning-of-freedom_1.html?m=0

Thursday, December 9, 2021

The Three Sources Of Energy

Remember that all energy that we use on earth ultimately comes from three sources, solar, supernova and, from the Big Bang.

SOLAR ENERGY

The sun releases energy because it fuses lighter atoms together into heavier ones by the force of gravity that overcomes the electron repulsion between atoms. The new heavier atom has less overall internal energy than the smaller atoms that were fused together to form it. The excess energy is released as radiation and this is why the sun shines.

The sun shining on plants provides the energy to build their structures by taking carbon dioxide molecules in the air, taking the carbon and releasing the oxygen back into the air. The energy of the sunlight goes into the molecular bonds between the carbon atoms in the plant. All of the energy that powers our bodies comes either directly from digesting plants, breaking the molecular bonds between carbon gives us the energy, or indirectly from digesting meat or seafood.

The energy from burning wood or fossil fuels is solar energy. The energy from the sunlight that shone on the plant during it's lifetime is released when the molecular bonds between carbon atoms are broken by heat. Oil and coal are the buried remains of plants that lived millions of years ago, and still contain the energy of the molecular bonds that formed while the plants lived.

Hydroelectric or water power is solar energy because it is the evaporation of water by sunlight that caused the water to fall as rain in a higher place, thus giving the water the potential energy of it's falling by gravity.

Wind energy is solar energy because it is the uneven heating of the earth's surface by the sun that causes wind.

Energy from solar panels or solar cells is obviously solar energy.

SUPERNOVA ENERGY

We know that our sun is a second-generation star because it contains heavy elements that are beyond it's current stage in the successive fusion process. A large star exploded in a supernova, which only happens to the largest stars, and some of the matter fell back together by gravity to form our present Solar System. That is why the sun is called a second-generation star. 

The vast amount of energy that was released by the supernova explosion is still with us today. The ordinary nuclear fusion process in stars only goes as far as iron, and is known as the S-process for "slow". The R-process, for "rapid", takes place only during the brief time that a large star is actually exploding as a supernova, which happens only to the largest stars. The energy released by the supernova fuses together the elements heavier than iron, which would not happen under the ordinary stellar fusion of the S-process.

This is the only way that elements heavier than iron are formed and explains why elements up to iron are exponentially more common than those heavier than iron, such as silver, gold and, uranium.

Some of these heavy atoms that were crunched together by the force of the supernova explosion are less-than-stable. These unstable atoms may give off particles or radiation in an effort to gain stability. These emissions are known as radioactivity and such radioactive decay gives off energy. There are many radioactive atoms inside the earth and geothermal energy is from the heat released by their decay. But much of the heat in the earth could be leftover from the formation of the Solar System, although that is still energy from the supernova.

Some of these heavy and less-than-stable atoms that were fused together by the energy released by the supernova can be split by high-velocity neutrons, and some energy released. This is nuclear fission which, at this point, is where we get all of our nuclear energy from and is energy from the supernova.

Hydrogen on earth usually exists in diatomic molecules, consisting of two atoms. There is energy in this molecular bond and this is the energy that is obtained if we burn hydrogen as fuel. But, unlike fossil fuels, this molecular bond was not put together by solar energy. It is from the energy of the supernova or, more likely, a nova, which is a blasting away of a star's outer layers, that preceded the supernova, which is an explosion of the star from the center.

All energy released by volcanoes and earthquakes are from the supernova.

Any energy that is derived from the spin of the earth is from the supernova. This includes tidal energy. Wind energy is mostly solar energy but the spin of the earth also contributes to it. Hurricanes get their spin from the spin of the earth so much of the energy in a hurricane, more so than ordinary wind, is from the supernova.

Moving glaciers during the ice ages, which do so much to shape the terrain, while formed by solar processes, are pulled toward the equator by the centrifugal force of the earth's rotation, and the force that they exert on the terrain is thus energy from the supernova.

BIG BANG ENERGY

All of the solar and supernova energy comes, of course, ultimately from the Big Bang that began the universe. Solar energy is not rooted in supernova energy, even though the sun is a second-generation star, because the sun is continuing the process of fusion that was originally taking place in the star that exploded, so that solar energy is separate.

There is one way that we can redirect energy directly from the Big Bang, without going through the sun or the supernova, it is nuclear fusion. This is the same process that takes place in the sun, and other stars.

All atoms contain a certain amount of internal energy. This is known as the Mass-Energy Equivalence, and is what gives matter it's mass. This energy could only have come from the energy released by the Big Bang.

Stars, operating by nuclear fission as gravity overcomes the electron repulsion between atoms and crunches smaller atoms into larger ones, shine because the new larger atom contains less internal energy than the smaller ones that were crunched together to form it. The excess energy is released as radiation, which we receive as sunlight and starlight.

But we can access this energy from the Big Bang by way of nuclear fusion, as opposed to fission which is splitting a heavy atom. Most nuclear weapons are based on fusion, the so-called hydrogen bomb, but, at the time of this writing, no one has yet made nuclear fusion into a practical energy source, despite endless promises. We can fuse atoms together by lasers but no one yet has made it into a net source of power, where we get more energy out of the process than we put into it.

The Black Box In Tasmania

Just as aircraft have a "black box", which is actually bright orange, that can be recovered in the event of any mishap to determine what happened, the earth has recently had a black box installed in a remote area of the Australian state of Tasmania. The black box is for anyone to find in the future after humans have destroyed our planet and ourselves. The focus is on climate change.

The black box is heavily armored and is set in a remote and geologically secure location. But what I question is the computer technology being used to record data. Far in the future this is going to mean nothing, even if it is accessible.

Do you remember in "Archeological Representation" we saw that the more technically advanced a society is the more distorted will be it's archeological representation. Here is a link to the original posting:

www.markmeekeconomics.blogspot.com/2012/11/archeological-representation.html?m=0

Thursday, December 2, 2021

Electron Dependency And Straight Lines

We usually define a straight line as "the shortest possible distance between two points. But is it really? Since we always define a straight line as the path of light, and other electromagnetic radiation, through space, and are utterly dependent on this electromagnetic radiation for our information about the universe, how can we be certain that there are not "shortcuts" across space that we are unable to see?

This is about my concept of straight lines being a matter of definition, particularly with regard to what I refer to as "Electron Dependency". Rather than "the shortest possible distance between two points" a straight line might better be defined as "the route of lowest energy between two points". The question then becomes whether these two definitions are identical.

Along the way we will look at optical illusions and the two newer branches of physics that do not adhere to the rules of conventional physics, Relativity and Quantum Physics, not necessarily because these branches of physics hold the answer to the mystery of whether straight lines are open to definition but just as a reminder that we do not have an unbiased view of the universe. We see the universe as we do not only because of what it is but also because of what we are.

Obviously there will be more than one possible definition of a straight line if we are in a dimensional set that is within a background of a greater number of dimensions, if our dimensional set is bent or twisted relative to the background dimensions, but I think there are possibilities of straight lines being open to definition even within our dimensional set.

CONTENTS:

1) THE SPECTRUM OF ELECTROMAGNETIC SPECTRUMS

2) OPTICAL ILLUSIONS

3) THE DECEPTION OF RELATIVITY AND QUANTUM PHYSICS

4) STRAIGHT LINES ARE REALLY THE LOWEST ENERGY ROUTE OF TRANSITION

5) DIMENSIONS AND STRAIGHT LINES

6) THE QUESTION OF STRAIGHT LINES OTHER THAN WITH DIMENSIONS


1) THE SPECTRUM OF ELECTROMAGNETIC SPECTRUMS

Two of the great mysteries of the universe involve what we can't see. 

According to the amount of matter that we can see in our galaxy, and the rate that our galaxy is spinning, it should fly apart by centrifugal force, but yet clearly it doesn't. The conclusion scientists came to is that there must be some kind of "dark matter" that we can't see but exerts gravitational force. The trouble is that a search has been going on for about a century and not the slightest trace of this "dark matter" has been found.

Another thing we cannot see are quarks. Quark Theory explains so much and is widely accepted, but no individual quark has ever been seen or detected. Quarks come in six types, plus the corresponding six antiquarks of antimatter, but the only two that really matter to us are the "up" and "down" quarks.

Quarks have partial electric charges, relative to the -1 charge on electrons and the +1 charge on protons. An "up" quark has an electric charge of + 2/3 and a "down" quark has an electric charge of - 1/3. So that two up quarks and one down quark together gives us a proton, with an overall charge of + 1, and two down quarks with one up quark gives us a neutron with an overall charge of zero. Electrons are a different class of particles, called leptons, and are not composed of quarks.

But no isolated quarks, outside of protons and neutrons, has ever been detected. 

Stars composed of quarks, actually collapsed former stars, are theorized to exist. Stars are an equilibrium between the inward force of gravity and the outward force of the energy released by fusion in the center of the star because the mutual gravity of the star's mass is enough to crunch small atoms together into larger ones, which contain less overall energy than the smaller atoms which were crunched together. The excess energy is released as radiation, which is why stars shine.

But the ordinary fusion process only goes as far as iron. Unless the star explodes in a supernova, which only happens to the largest stars, without the energy released by the fusion process gravity will take over and the very atoms, which are mostly empty space, of the star will be crushed. Electrons will be crunched into protons, the process known as K-capture, to produce neutrons. The result is a star, composed only of neutrons, and known as a "neutron star", although it is no longer technically a star because fusion is no longer taking place.

Plenty of neutron stars have been detected. The material of a neutron star is incredibly dense and, if neutrons are indeed composed of quarks, further gravitational collapse should take place so that a quark star, a star composed of quarks, should form. Further collapse should then take place to form a black hole. Like neutron stars plenty of black holes have been found, but no quark stars.

If quarks really exist, and quark theory explains so much and is very widely accepted, then why can't we see or detect any quark stars?

Since we cannot see dark matter, but it has a powerful gravitational effect, and we can't see or detect quarks, but they make up the vast majority of the mass of atoms, has anyone ever thought that maybe dark matter is quarks that never became part of atoms?

Could it be that the answer to these baffling mysteries is right in front of us? Maybe it only requires a little bit of thinking outside the box.

A basic presumption of science has always been that we have an unbiased view of the universe, that we can completely rely on our measurements and observations. But what if we don't? What if we see the universe as we do not only because of what it is but also because of what we are? Maybe that is why there is so much about the universe that we just can't explain, that doesn't make sense to us.

What I refer to as "Electron Dependency" means that what we can see, measure and, detect all depends on electrons. The electromagnetic waves that we depend on are all generated, in some way, by the movement of electrons. 

The only way that we can see or detect electromagnetic waves is the photoelectric effect, the energy of the waves knock electrons out of their orbitals in atoms, creating an electric current. Light is reflected by objects, so that we can see the objects, by electrons in orbitals of atoms without knocking the electrons out of their orbitals.

Of course since we are completely dependent on electrons to receive or detect electromagnetic waves this affects our perception of the electrons themselves. Electrons seem like just point particles, with no internal structure at all. It is impossible for us to detect what is inside electrons if we are dependent on the electrons themselves for information.

My concept of Electron Dependency is that we can only see or detect electromagnetic waves that are produced or reflected by electrons, or another particle with a whole electric charge. This means an electric charge of 1, whether the -1 of electrons or the +1 of antimatter positrons. As far as I know antimatter, which is like ordinary matter but with the electric charges reversed, would handle electromagnetic waves in the same way as ordinary matter and we could not tell matter and antimatter apart just by looking at it.

We think in terms of whole electric charge. What I mean by that is the charge of -1 on an electron or +1 on a proton. That is to be expected since all of the matter we deal with is composed of atoms which are composed of the subatomic particles that have whole electric charges.

Again we come back to the issue of us thinking that we have an unbiased view of the universe. Just because the matter that we are composed of and that we deal with are made of whole electric charges, either +1 or -1, we presume that to be the way it always is.

But what if a whole electric charge is really an arbitrary amount? We measure distance in the fixed units of meters. However a meter is an arbitrary length. It could just as easily been decided that some other length would be defined as a meter. The same could be true of electric charge.

In my cosmology theory a particle like an electron is a bundle of the fundamental electric charges that the universe is made of. An electron is all negative charges, held together against their mutual repulsion by energy, and this energy is what gives matter it's mass and shows up as the Mass-Energy Equivalence. The formula for Mass-Energy Equivalence is Einstein's famous formula, E = MC squared.

But a certain number of these charges are held together as an electron, it seems that the charge on all electrons are equal to one another, the -1. But the number of fundamental electric charges that are held together to form an electron, with the charge that we refer to as -1, is the way it is just because of the way the universe came together in the Big Bang. It could just as well have been different, which would have made the -1 and +1 different. 

So why don't we start thinking of the charge on protons and electrons as an amount of charge that could have been different, rather than the absolutely ironclad +1 and -1? 

This is difficult to do because not only are we dealing with electric charge defined by the number of electrons in things like electricity and chemistry, we are dealing with the equal but opposite charge of protons in things like nuclear science and fusion in stars. At this point it seems that we are incapable of breaking protons or electrons apart so we always deal with whole charges, +1 or -1, and this is what we are used to.

We know that quarks do not have what we define as "whole" electric charges. An up quark has a fractional charge of + 2/3 and a down quark - 1/3. Hadrons, particles like protons and neutrons, are composed of three quarks. Two up quarks and a down quark make up a proton, with a net charge of +1. Two down quarks and an up quark make a neutron, with a net charge of zero.

But if the electromagnetic waves that we can see and receive are always based on "whole" electric charges, that explains why we cannot observe either quarks or quark stars, which have been theorized to exist. It also explains the great mystery of dark matter, the apparently great amount of matter in the universe that has a powerful gravitational effect, but which we cannot see or detect. 

This also explains black holes, which actually sound like a large collection of dark matter. If we depend on electrons to see or detect matter, other than by gravity, then the matter should be invisible once the structure of atoms has collapsed.

All of the electromagnetic spectrum that we detect, from gamma rays to radio waves, are based on whole electric charges, -1 or +1. Matter that is not based on whole electric charges, namely quarks, will not be detectable in our electromagnetic spectrum. 

Yet quarks are based on electric charges too, the fractional electric charges of 2/3 and 1/3. Quarks should have their own electromagnetic spectrum, based on their electric charges which are different from what we define as our "whole" charges.

This means that the electromagnetic spectrum, the waves produced by processes involving charged particles, must be two-dimensional. Not only is there the electromagnetic spectrum that we are familiar with, there is also a "spectrum of spectrums" based on the amount of charge involved in producing the wave. 

Our familiar spectrum is, of course, based on the whole electric charges. Quarks must have their own spectrum and, like different radio stations, the two are not "tuned in" to each other. 

If quarks could think, and were speculating about other spectrums as I am doing here, down quarks, which we see as having a fractional charge of - 1/3, would see up quarks, which we see as having a fractional charge of + 2/3, as having a multiple charge of 2. Down quarks would see our familiar spectrum as having a multiple charge of 3.

If up quarks could think they would see down quarks as having a fractional charge of 1/2 and our familiar spectrum as having a fractional charge of 3/2.

What this idea if Electron Dependency is really all about is not charges or particles but about the nature of electromagnetic waves. Electromagnetic waves, other than those echoing from the Big Bang, are produced by matter and are defined by their interaction with matter. There are not different types of electric charges but there are different amounts of charge in the matter that produces the waves.

Just as different radio stations are not "tuned in" to one another so waves from matter of one amount of charge will not be detectable by matter composed of a different charge, although there would still be gravity between the matter.

This is why we have never detected individual quarks or quark stars and cannot see dark matter or black holes. Noticing this was not really difficult. It just required some "thinking outside the box", and the realization that we do not have an unbiased view of the universe. We are part of the universe and see it as we do not only because of what it is but also because of what we are.

2) OPTICAL ILLUSIONS (formerly part of VISION AND STRAIGHT LINES)

I am really fascinating by the concept of straight lines. Straight lines are very important to us. We depend on light, which travels in straight lines, to give us information about the world around us. We define a straight line as the shortest distance between two points.

The trouble with that is the point that our very definition of straight lines is the path that light takes across space. The reasoning goes around in a circle. We say that light travels in straight lines, but our very definition of a straight line is the route that light takes.

One of the basic principles of science is that we have an unbiased view of the universe. But what if we don't? Maybe it's time to question that. 

Let's begin with our vision, upon which we are so dependent for information.

First, we do not actually see objects. We see the light that is reflected or radiated by those objects. Light does not always give us a completely accurate picture of our surroundings.

There are what we call optical illusions, meaning that we do not see things as they really are due to the interaction of light with the intervening environment. Rainbows and sun dogs, where white light is broken down into it's component colors through refraction by water droplets, and the shimmering water mirage, on a hot road or surface some distance ahead, are the best-known optical illusions.

Stars do not have the "points" that we often portray them with. The sun is a star, and we can see that it is spherical. The "points" that stars may appear to have is a trick of our vision.

An ideal example of how we see the light, rather than the objects themselves, is the blue of the sky. Light is reflected by objects that are around the same size as the wavelength of the light. Wavelength is the inverse of frequency, a higher frequency means a shorter wavelength. Red has the longest wavelength of visible light, and blue the shortest.

The sky is blue because it's short wavelength is closest to the typical scale of the dust particles in the air, so that only the blue light is reflected to our eyes. When there is a large-scale fire, the sky may appear orange instead of blue. That is because it puts larger dust particles in the air and, until they settle to earth, reflect the longer wavelengths of light.

Longer wavelengths are scattered, by either reflection or refraction, less than shorter wavelengths. This is why sunsets or sunrises appear red or orange. The shorter wavelengths of blue light are scattered away altogether and only the longer wavelengths get through for us to see. It is also the reason that streetlights in Britain are orange, the longer wavelengths are refracted less by droplets of fog.

The same principle applies to the entire electromagnetic spectrum. If you drive under an overpass with the radio on longer wavelengths, such as AM in North America, will fade but shorter wavelengths, such as FM in North America, won't. That is because the longer wavelengths are close to the size of the overpass, and are reflected away, while the shorter wavelengths can be reflected around and received under the overpass.

Another optical illusion is how deep water appears blue. While the sky is blue because of reflection, from dust particles in the air, the sea is blue because the shortest wavelength, which is blue, is refracted the most. Water eventually absorbs light, but absorbs the longest wavelengths first. If you look at underwater photographs, you may notice that you never see anything red below a depth of about 9 meters, or 30 feet. Only blue lasts long enough before being absorbed, and is refracted enough, to be refracted back to the surface. That is why deep water appears blue, but it is yet another optical illusion.

Another way that the light from objects does not show us those objects as they really are is transparency. If the atoms or molecules of a material are lined up in a regular pattern, that material will appear transparent to us if light can pass right between the atoms.

Also, if we magnify light by the use of lenses, an optical microscope cannot magnify more than about 1400x due to the wavelength of light.

After optical illusions the next issue concerning vision that we come to is color.

The colors of visible light that we see, from lowest frequency and longest wavelength to highest frequency and shortest wavelength, is red, orange, yellow, green and, blue. But color does not actually exist, outside of ourselves. We see something as red or blue because of how our eyes and brains interpret different wavelengths of light. Other than that, there is really no such thing as color.

We could thus say that color itself, the most basic element of vision, is an optical illusion.

An interesting thought about color is that we cannot describe it with words. Have you ever tried to describe your favorite color to someone who has always been totally blind? You can't, it's impossible. The words do not exist.

But if we cannot describe color with words, then how can we be sure that we all see the same color in the same way? For all we know, you might see red as I see blue and I might see orange as you see red.

Another issue in how we do not see objects, but the light from the objects and there is a difference, is the so-called "forbidden colors". There are two known forbidden colors, which are color combinations that our eyes are unable to process because both colors are sensed with the same part of the eye, although in different ways. We cannot see both colors from the same place at the same time. 

The two forbidden color combinations are red-green and blue-yellow. The eyes cannot process these colors, so we will see something that looks like mud.

That brings us to the color brown. No color is actually real, outside of our vision, but I see brown as being even less real than the others. Brown is really what we see if we look at a combination of colors that our eyes are unable to process.

Not only is color a matter of our definition, we actually define what light itself is. The spectrum of visible light that we see, from red to blue, is only a very limited part of the total electromagnetic spectrum. That spectrum, from longest wavelength to shortest, is radio waves, microwaves, infrared (heat), visible light, ultraviolet, X-rays and, gamma rays.

The reason that electromagnetic radiation falls into these different categories has nothing to do with the radiation itself, which is simply different wavelengths. Just as the colors of the visible part of the spectrum are categorized by how our eyes and brains interpret the different wavelengths, so the entire electromagnetic spectrum is categorized not by anything to do with the waves themselves, but in how they interact with matter. 

Outside of living things, the concept of the visible spectrum would be meaningless. We define what the visible spectrum is going to be by the scale of our eyes. This means that we actually define the light that we depend on for information about the world and universe around us.

Can you see how we have anything but an unbiased view of the universe? We see the universe as we do not only because of what it is but also because of what we are.

Quite a bit about the universe is simply a matter of definition, of how we see things. Consider the question of whether the universe, as a whole, is rotating. If galaxies rotate then why shouldn't the whole universe, which is a "galaxy of galaxies", rotate?

But for us to define rotation there must be an external reference point that either isn't rotating, or is rotating at a different rate. Since our very definition of the universe is that it encompasses everything there is, there can be no external reference points by which to gauge whether the universe is rotating.

This means that the question of whether the universe is rotating is a matter of definition. Put simply, the universe is rotating if you would like it to be rotating.

Now that you can see how we see the universe as we do not only because of what it is, but also because of what we are, and however useful our sense of sight is it definitely does not show us the world and the universe as it really is, let's get back to the question of straight lines.

The most likely definition of a straight line is the shortest distance between two points. But we depend on our visual sense for this definition. We will always define a straight line as the path of light.

But considering how light does not necessarily show us things as they really are, and how so much is open to definition, isn't it possible, or even probable, that there might be another definition of a straight line that we, due to our nature, cannot see? Maybe what we see as straight lines are somehow curved, and there is a shorter route across space that we cannot see.

Can we be sure that electromagnetic radiation doesn't somehow travel by both direct and indirect routes and that we are only able to sense an indirect route, which we incorrectly perceive as the direct route, a straight line?

I find that the basic fault of conventional science is it's presumption that we have an unbiased view of the universe. We see the universe as we do not only because of what it is but also because of what we are.

3) THE DECEPTION OF RELATIVITY AND QUANTUM PHYSICS

We have seen, in my cosmology theory, the explanation of why there are three branches of physics. First, there is the ordinary physics of a textbook. This encompasses mass, forces, acceleration, gravity, electric charges, electromagnetic radiation, and so on.

But then there are two new branches of physics, Relativity and Quantum Physics (or Quantum Mechanics). The strange thing about these two new branches is that they are based on things that cannot be explained by ordinary physics. To make things even more mysterious, the two new branches are completely incompatible with each other.

There are actually two separate theories of Relativity, both by Albert Einstein. The one that I am referring to here is the Special Theory of Relativity, from 1905. This is about how the speed of light is absolutely sacrosanct and everything else is relative at speeds anywhere near the speed of light. Mass becomes greater and greater at speeds approaching the speed of light, until it becomes infinite at the speed of light. Time, meanwhile, slows down until it stops at the speed of light.

Einstein's General Theory of Relativity, which was published ten years later in 1915, is about how gravity curves space.

The great divide between Relativity and Quantum Physics is the speed of light. In Special Relativity, the speed of light is absolutely invariable, with time and mass and distance revolving around it. But in Quantum Physics, the speed of light is not even a factor at all. It can be shown that, with two entangled photons, information passes instantaneously between them without being bound at all by the speed of light.

How can this possibly be? Einstein spent much of his later years trying to reconcile the two, but without much success. To compound the mystery, once again, none of this can be explained in terms of ordinary physics.

But my cosmology theory has a solution, and it's rather simple. The solution involves what we are. We presume that we have an unbiased view of the universe, but we don't. we are a part of the universe ourselves. The fundamental principle of the cosmology theory is that to really understand the universe, we have to understand that we see it the way we do not only because of what it is but also because of what we are.

Once we understand that, everything seems to fall into place that cannot be explained otherwise. Following is the two-paragraph abstract that I use to explain the theory.

( Note-My cosmological theory has the universe as not-quite-parallel strings of matter aligned mostly in one direction in four-dimensional space, although there could be many more than these four dimensions. The direction in which these strings of matter are primarily aligned is the one that we perceive as time, along which our consciousnesses move at what we perceive as the speed of light. We can only see perpendicular to the bundles of strings of matter comprising our bodies and brains. The original two-dimensional sheet of space, amidst the multi-dimensional background space, disintegrated in one of it's two dimensions as one pair of it's opposite sides came into contact. Due to charge migration, to seek a lower energy state, one side was positive in charge and the other was negative. This brought about the matter-antimatter mutual annihilation that we perceive as the Big Bang. The energy in the disintegrating dimension, from the tension between adjacent opposite electric charges, was released. The remaining dimension then consisted of very long strings of infinitesimal cross-section, that we perceive as the particles of matter today. Some of the energy released by the disintegrating dimension went into "welding" the charges of the remaining dimension together as strings of matter. We perceive these strings as particles because our consciousnesses are moving along the bundles of strings composing our bodies and brains, at what we perceive as the speed of light, and we can only see at right angles to our strings.

So, the basics of my theory is a two-dimensional sheet of space, which formed amidst the multi-dimensional background space by the same kind of opposite charge induction, disintegrating in one of it's two dimensions as one pair of it's opposite sides came into contact to create the matter-antimatter explosive mutual annihilation that we perceive as the Big Bang, which began the universe, and which scattered the remaining one-dimensional strings of matter out across space to form the universe that we see today. The strings of matter from the original two-dimensional sheet were scattered across four dimensions of the background space).

We could think of science as being either "with us" or "without us". The ordinary physics of a textbook is "without us" science. What I mean by that is simply that the laws of this physics would be the same whether humans were here or not.

But the two "new" branches of physics, Relativity and Quantum Physics, are, as I see it, "with us" sciences. We see the universe as we do through these branches of physics because of what we are. The truth is that neither Relativity, at least Special Relativity, nor Quantum Physics really exists outside of humans.

Matter is really composed of strings aligned mostly in one direction in four-dimensional space. We see matter as composed of particles in three-dimensional space because we can only see, and move at will, in three of the four dimensions. The fourth dimension over which matter is scattered is what we perceive as time, as our consciousnesses proceed along the bundles of strings comprising our bodies and brains at what we perceive as the speed of light.

That is why the speed of light seems so sacrosanct in the Special Theory of Relativity, it is because of what we are. other than within us, the speed of light doesn't really exist.

In my cosmology theory, empty space consists of a checkerboard of alternating negative and positive electric charges. Matter consists of one-dimensional strings, aligned mostly in the dimension of space that we perceive as time, of either negative or positive charge such as negatively-charged electrons. Electromagnetic waves are two-dimensional energetic disturbances in this perfectly alternating checkerboard of charges, in multiple dimensions. The waves are not really electromagnetic but seem so to us because they disturb the underlying checkerboard balance of negative and positive charges.

The way that we receive electromagnetic radiation, light, by sight is that the energy of the wave knocks electrons out of their orbitals in atoms within the sensors of our eyes of photosensitive equipment. But the wave is two-dimensional, it must be because it has the two components of amplitude and wavelength, while the electrons in our eyes are one-dimensional strings. The electron absorbs the energy of one dimension of the wave, knocking it out of it's orbital to create a flow of current that goes to our brains, but that leaves the remaining dimension of the wave.

This one remaining dimension of the electromagnetic wave thus acts like a one-dimensional string of matter, which we perceive as particles because we can only see in three of the four dimensions. This is why Quantum Physics has electromagnetic radiation with both a wave and a particle nature. This is one of the many mysteries of these two new sciences that cannot be explained by ordinary physics.

So there are these two new sciences that are based on principles that cannot be explained by ordinary physics, and are also incompatible with each other. But then why couldn't there be a third new science, based on what we are and how it affects the way we see the universe? If there was, what could it be? That is what I want to address today.

4) STRAIGHT LINES ARE REALLY THE LOWEST ENERGY ROUTE OF TRANSITION

One thing that really fascinates me is straight lines. But notice that we define straight lines by the path of light. A definition of a straight line is the shortest path across space between two points.

Could there be a possibility that we see straight lines as we do not because of what the universe actually is, as with Relativity and Quantum Physics, but because of what we are? Are the straight lines that we see because of something in our nature that is of yet undefined?

Basing our definition of straight lines on the path of electromagnetic radiation could be a matter of our scale and perspective on the universe. As with Special Relativity and Quantum Physics, we might be seeing the universe as we do not only because of what it is but because of what we are.

A "straight line" is actually the transition route of lowest energy. This makes sense because we know that the universe always seeks the lowest energy state, which is why objects in the air tend to fall to the ground.

The universe is just information. We have to see it as "real", as we do, because we are made of the same information. At some level, the entire universe is actually a formula.

Distance is information, and information is the same thing as energy. This is why it requires energy for an object to traverse a distance.

Once again, we know that energy and information is the same thing because we cannot apply energy to anything without adding information to it and cannot add information to anything without applying energy to it. Another way that we can see energy and information as the same thing is that we can make our lives physically easier, through technology, but only at the expense of making them more complex. We can never, on a large scale, make life physically easier and also less complex.

But we can see that a "straight line" is simply the route of lowest energy transition, and is based on what we are and how we receive information about the universe. Consider an electron. If there were two wires, a longer wire but with less resistance then the shorter wire the electron, not basing it's understanding on electromagnetic radiation as we do, would see the longer wire as the shorter distance. This is because it is simply the route of lowest energy transition.

5) DIMENSIONS AND STRAIGHT LINES

An electron in a flow of electricity would always "see" the wire through which it flows as a straight line. It would not matter at all if we saw the wire as actually zig-zagging across the floor. That is because the electron's definition of a "straight line" is not the same as ours. We can "see" in more dimensions of space than the electron can.

The next question is that if an electron sees what we see as a longer route as a shorter route because of what it is, meaning that there is definitely different ways of defining what a "straight line" is, then why couldn't we see a longer route as the shortest route, according to another definition, according to what we are?

Suppose that we have a two-dimensional sheet of plastic. There would have to be a short third dimension to the plastic, but we can ignore that for our purposes here. Now suppose that there was a two-dimensional being that lived within the two-dimensional sheet.

If we were to bend the sheet, the two-dimensional being within the sheet would be utterly unaware of the bend. This is because the bend would involve a third dimension of space and the being, since it is two-dimensional, would only be able to be aware of two dimensions, the two of the sheet. No matter how much we bent the sheet, the two-dimensional being would invariably see the route from one side of the sheet to the other as a perfectly straight line.

We also have our dimensional limits three of space and the fourth that, according to my cosmology theory, we perceive as time. There could be many more dimensions of space than the four that we live in. if I had to guess how many dimensions there were, my guess would be infinity. An infinite number of dimensions is actually a lower information state, which the universe favors, than any finite number of dimensions.

So if the block of dimensions that we inhabit was somehow bent or curved, relative to the outer dimensions, we would be no more able to distinguish it than the two-dimensional being that lived within the sheet. My cosmology theory has matter beginning with a two-dimensional sheet of space that was within, but not having it's component electric charges aligned with, the surrounding background space.

This means that we could be taking "the long way around" when we go from one place to another because the shortest route between two points in the limited block of dimensions that we inhabit is not necessarily the same as it would be if we could access more dimensions. We would not be able to see the "shortcuts", in the same way as the two-dimensional being in the bent sheet of plastic.

Since the definition of a straight line is the shortest distance between two points, that can only mean that the definition of a straight line is relative. The route of lowest energy transition will always be seen as a straight line but, as we see from the examples of the electron in the wire and the imaginary being in the two-dimensional sheet, that definition may change when the perspective changes.

Einstein's General Theory of Relativity, from 1915, actually does show an example of how straight lines are a matter of perspective. The gravity of a massive object bends light, and the effect is called gravitational lensing. According to Einstein's theory, the massive object bends light by "curving" the space around it.

But since we define a straight line by the path of light itself, that shows that our definition can be relative and a matter of perspective. This also shows that, as stated in my cosmology theory, that light consists of two-dimensional waves. This is shown by the fact that light, and other electromagnetic waves, have the two components of amplitude and wavelength (frequency is the inverse of wavelength). Just the fact that we can tell that gravity bends light is because we see in three-dimensions of space but the waves of light occupy onto two dimensions. if not for this, we would not be able to tell that gravity bends light.

6) THE QUESTION OF STRAIGHT LINES OTHER THAN WITH DIMENSIONS

Obviously, in an inner dimensional set that exists within an outer dimensional set, straight lines may be open to definition, since the inner dimensional set would be utterly unaware if it were bent or curved with regard to the outer set. But what about straight lines possibly being open to definition in a fixed dimensional set?

Since we are utterly dependent on the waves associated with electrons for information about the universe around us, as we saw in "Electron Dependency", and since we will always define a straight line as the route taken by these waves, there is a possibility that this defines one possibility as a straight line. We have no way of knowing if, for example, waves produced by other than "whole" electric charges, such as quarks with fractional charges, might present another definition of what a straight line is.

Electromagnetic waves distort the checkerboard pattern of alternating negative and positive electric charges that makes up empty space. The charges usually completely balance out and we perceive the waves as electromagnetic because they disturb this underlying balance. It takes energy to bring about this disruption and so electromagnetic waves are patterns of energy in space.

The directions and amplitudes of waves in space are very uneven. This means that their distortion of the electric charges of space must also be uneven. Since a "straight line" is actually the route of lowest energy, then shouldn't waves affect the routes of each other from what they would be if space were completely empty? But we can never detect this because we will always perceive electromagnetic radiation as taking the route of a straight line.

This is not the same thing as Einstein's General Theory of Relativity, where gravity bends light. We can detect that because light from only one direction is affected as the light coming to us from the other side of a massive astronomical object.

We can only detect this bending of light by gravity when there is a suitable source of light on the other side of a massive astronomical object. But any mass bends the path of light. Although the bending by a mass like that of the earth is slight how can we know whether there might be gravitational patterns that change the definition of a straight line that we are unaware of, since we always perceive the path of light as a straight line?


We have our definition of a straight line, the shortest possible distance between two points. But my conclusion is that there are other definitions of a straight line that, due to our nature, we are not able to detect. A basic presumption in science is that we have an unbiased view of the universe, we can completely rely on our measurements and observations. My conclusion is that we actually see the universe as we do not only because of what it is but also because of what we are.

Most Recent Updates

We saw in the posting, "The End Of The World As We Know It" on this blog, how I am certain that smartphones are the fabled "Mark of the Beast" without which, in the Last Days of the world before the Apocalypse, people will not be able to engage in financial transactions.

I could not find that this had ever been suggested before. I first wrote it here in 2009.

With the pandemic we can see how, in many places, a vaccination certificate, presented on one's phone, is necessary to enter a business establishment. Since then has been a trend for other identification documents, such as a driver's license, to be held in digital form on the phone.

As for the virus you can see what I meant in the posting, "The Natural History Of The Flu" August 2020, about how, as time goes on, new strains of the virus tend to be more contagious, but less deadly. We can see this in the most recent variant of Covid, known as Omicron. It is very contagious, but not especially deadly.

Suppose that the virus could "think" which, on a large scale through natural selection, it can. It is in the virus' interest to be as contagious as possible, but not to do much harm to it's host since the host is it's home. It is only in the virus' interest to produce symptoms in the host, such as coughing and sneezing, which help to spread the virus. 

This is how the flu arrived at the equilibrium it has with humans today.

Understanding Britain And Europe

To fully understand the contentious relationship between Britain and Europe we have to understand that the European Union is really a restoration of the Holy Roman Empire, and that Britain was not a part of that empire. 

The Holy Roman Empire was benign, as empires go, it's influence is so great because it lasted a thousand years. In 2004 the European Union underwent a great enlargement eastward that surprised many people across the world. But it really shouldn't be surprising considering that the original reason for the creation of the Holy Roman Empire was to reign in Christians in eastern Europe who were questioning the authority of the pope.

History is so important because we tend to repeat it, often without realizing it. Here is a link to the original posting about the Holy Roman Empire:

www.markmeeksideas.blogspot.com/2016/04/the-far-reaching-legacy-of-holy-roman.html?m=0 

We recently had a look at economics with the posting, "The Day Of The Worker". The modern theories of both capitalism and Communism originated in Britain. Read the following posting to see how amazingly ironic Britain is with regard to economics:

www.markmeekeconomics.blogspot.com/2014/11/the-influx-of-wealth-into-britain.html?m=0