Unified field theory from Hamilton cotangent bundle geometry - The Einstein-Maxwell system

Fuente: arXiv
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Main Authors: Pfeifer, Christian, Relancio, José Javier
Format: Preprint
Published: 2025
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author Pfeifer, Christian
Relancio, José Javier
author_facet Pfeifer, Christian
Relancio, José Javier
contents The unification of all physical fields into one mathematical object and the derivation of all physical field equations from that object in one framework is a long-lasting endeavor in fundamental physics. We suggest a new approach to achieve this goal by encoding physical fields into the geometry of the 1-particle phase space on spacetime (the cotangent bundle) through Hamilton geometry. The fundamental field, which contains information about all physical fields in spacetime and defines the phase space geometry, is a scalar field in phase space that is interpreted as a point-particle Hamiltonian. We construct an action principle for scalar fields in phase space and derive the corresponding scalar field equation. By choosing a specific scalar field, namely the Hamiltonian describing a charged particle in curved spacetime with an electromagnetic field, we show that this phase-space scalar field equation is equivalent to the coupled Einstein-Maxwell equations in spacetime, thus providing a geometric unification of gravity and electromagnetism. We further discuss how this approach differs from previous unification attempts and its potential for describing further physical fields and their dynamics in a unified manner in terms of phase-space geometry.
format Preprint
id arxiv_https___arxiv_org_abs_2510_15812
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unified field theory from Hamilton cotangent bundle geometry - The Einstein-Maxwell system
Pfeifer, Christian
Relancio, José Javier
General Relativity and Quantum Cosmology
The unification of all physical fields into one mathematical object and the derivation of all physical field equations from that object in one framework is a long-lasting endeavor in fundamental physics. We suggest a new approach to achieve this goal by encoding physical fields into the geometry of the 1-particle phase space on spacetime (the cotangent bundle) through Hamilton geometry. The fundamental field, which contains information about all physical fields in spacetime and defines the phase space geometry, is a scalar field in phase space that is interpreted as a point-particle Hamiltonian. We construct an action principle for scalar fields in phase space and derive the corresponding scalar field equation. By choosing a specific scalar field, namely the Hamiltonian describing a charged particle in curved spacetime with an electromagnetic field, we show that this phase-space scalar field equation is equivalent to the coupled Einstein-Maxwell equations in spacetime, thus providing a geometric unification of gravity and electromagnetism. We further discuss how this approach differs from previous unification attempts and its potential for describing further physical fields and their dynamics in a unified manner in terms of phase-space geometry.
title Unified field theory from Hamilton cotangent bundle geometry - The Einstein-Maxwell system
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2510.15812