A framework for quantum theory of elementary physical entities
Wen-ge Wang

TL;DR
This paper proposes a quantum-grounded framework for elementary particles called modes, incorporating fundamental processes, spinor structures, and interactions, with a model resembling the Standard Model and predicting novel phenomena like dark matter modes.
Contribution
It introduces a new quantum framework based on modes with layered spinor states and fundamental processes, extending the Standard Model and offering novel predictions.
Findings
Model's time evolution operator resembles the Standard Model
Predicts fractional charge changes for quark modes
Contains modes that could explain dark matter phenomena
Abstract
A unified framework, which is directly established on the quantum ground, is proposed for elementary physical entities, called \emph{modes} in this paper. The framework is mainly built upon five basic assumptions, which loosely speaking have the following contents. (i) The state space of each mode is given by the direct product of a momentum-state space and a spinor-state space, the latter of which is certain representation space of the group (a covering group of the Lorentz group); (ii) spinor states of modes have a layer-type structure and modes are either fermionic or bosonic, depending on their helicity properties; (iii) there are three fundamental processes -- free evolution, vacuum fluctuation (emergence or vanishing of a pair of fermionic modes that possess exactly opposite physical properties), and two fundamental interaction processes (change of two fermionic modes…
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Taxonomy
TopicsQuantum Mechanics and Applications · Computational Physics and Python Applications · Earth Systems and Cosmic Evolution
