An Interpretation of Quantum Foundations Based on Density Functional Theory and Polymer Self-Consistent Field Theory
Abstract
The Feynman quantum-classical isomorphism between classical statistical mechanics in 3+1 dimensions and quantum statistical mechanics in 3 dimensions is used to connect classical polymer self-consistent field theory with quantum time-dependent density functional theory. This allows the theorems of density functional theory to relate non-relativistic quantum mechanics back to a classical statistical mechanical derivation of polymer self-consistent field theory for ring polymers in a 4 dimensional thermal-space. One dynamic postulate is added to two static postulates which allows for a complete description of quantum physics from a 5 dimensional thermal-space-time ensemble perspective which also removes the measurement problem. In the classical limit, a cylinder condition naturally arises as the thermal dimension becomes irrelevant, providing a justification for using 5 dimensions and a cylinder condition in general relativity, which is known to produce 4 dimensional space-time gravity and Maxwell's equations. Thus, in this approach, the postulates of electromagnetism become derived results of a special case of a ring polymer interpretation of quantum foundations.
Cite
@article{arxiv.2111.14236,
title = {An Interpretation of Quantum Foundations Based on Density Functional Theory and Polymer Self-Consistent Field Theory},
author = {Russell B. Thompson},
journal= {arXiv preprint arXiv:2111.14236},
year = {2021}
}
Comments
Under review since 26 Apr 2021 with Foundations of Physics