Towards a Maximal Mass Model
V. G. Kadyshevsky, M. D. Mateev, V. N. Rodionov, A. S. Sorin

TL;DR
This paper proposes a Maximal Mass Model extending the Standard Model by introducing a fundamental mass limit M, leading to new particles, symmetry breaking effects, and potential dark matter candidates, grounded in a geometric de Sitter momentum space framework.
Contribution
It introduces a geometrical approach to a maximal mass in quantum field theory, extending the Standard Model with new particles and symmetry concepts, and explores implications for high-energy physics and dark matter.
Findings
Fundamental mass M acts as a new universal constant.
Spontaneous symmetry breaking renormalizes the fundamental mass.
Prediction of exotic fermions as dark matter candidates.
Abstract
We investigate the possibility to construct a generalization of the Standard Model, which we call the Maximal Mass Model because it contains a limiting mass for its fundamental constituents. The parameter is considered as a new universal physical constant of Nature and therefore is called the fundamental mass. It is introduced in a purely geometrical way, like the velocity of light as a maximal velocity in the special relativity. If one chooses the Euclidean formulation of quantum field theory, the adequate realization of the limiting mass hypothesis is reduced to the choice of the de Sitter geometry as the geometry of the 4-momentum space. All fields, defined in de Sitter p-space in configurational space obey five dimensional Klein-Gordon type equation with fundamental mass as a mass parameter. The role of dynamical field variables is played by the Cauchy initial conditions…
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Taxonomy
TopicsQuantum and Classical Electrodynamics · Algebraic and Geometric Analysis · Particle physics theoretical and experimental studies
