Dark Matter
The search for a dark matter 'particle' may well be futile. If I had to bet on a particle I would have my money on antineutrons – the right handed neutrinos interact with the Higgs field and become left handed anti-neutrinos blocking anti-beta decay. They would have cooled until they are in a collapsed Bose-Einstein condensate state – interacting as two fermions such as Cooper Pairs and their collective boson. Where, anti-neutrinos could, upon expansion of the condensate, cause a neutrinoless anti-beta decay. Where, the resulting anti-electron and anti-proton would annihilate into two, or possibly three, photons each with local hydrogen9.
Yet, if the universe works much as proposed there is the potential to have small groups of quanta about. These small groups of quanta have possible gravitational potential. This dark, non-luminous, gravitationally creating matter would also be strongly influenced by gravity. The result would be that this dark matter would have a strong tendency to be close to matter. This dark matter would also find a tendency to be attracted to areas between distant massive objects if indeed gravity undergoes scattering or decay. The result of which would be the formation of the cosmic web. Due to the dilation caused by gravity, matter absorbs dark matter when the gravitation increases and desorbs dark matter when the gravitation decreases.
Figure 30: A nice piece of dark matter. Note dark matter could be extremely large (many quanta) relative to this diagram.
Darkmatter would be kept as an atmosphere in galaxies keeping in rotation at thesame rate as the stars. Near the black hole in the center one would likely finda deficit of dark matter that has been gobbled up by the black hole.
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