Generalization of Abelian Gauge Symmetry and the Dark Matter and Energy Problem
Nikolay P. Tretyakov, Alexandre Ya. Terletsky

TL;DR
The paper proposes a generalized abelian gauge symmetry framework introducing imaginary charges and dark photons, which could explain dark matter and the universe's accelerated expansion through negative energy density fields.
Contribution
It introduces a two-parameter family of abelian Lie groups, explores the implications of imaginary charges, and links these to dark matter and dark energy phenomena in cosmology.
Findings
Imaginary charges lead to attraction between like charges.
Dark photons with negative energy density could drive cosmic acceleration.
Dark matter candidates called allotons are proposed based on imaginary charges.
Abstract
A commutative generalization of the gauge symmetry group is proposed. The two-parametric family of two-connected abelian Lie groups is obtained. The necessity of existence of so-called imaginary charges and electromagnetic fields with negative energy density (dark photons) is derived. The possibilities when the overall Lagrangian represents a sum or difference of two identical Lagrangians for the visible and hidden sectors (i.e. copies of unbroken) are ruled out by the extended symmetry. The distinction between the two types of fields resides in the fact that for one of them current and electromagnetic kinetic terms in Lagrangians are identical in sign, whereas for another type these terms are opposite in sign. As a consequence, and in contrast to the common case, like imaginary charges attract and unlike charges repel. Some cosmological issues of the proposed hypothesis are discussed.…
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Taxonomy
TopicsCosmology and Gravitation Theories · Relativity and Gravitational Theory · Advanced Thermodynamics and Statistical Mechanics
