A gravitationally induced decoherence model for photons in the context of the relational formalism
Max Joseph Fahn, Kristina Giesel, Roman Kemper

TL;DR
This paper develops a model of gravitationally induced decoherence for photons within the relational formalism, deriving a master equation from Maxwell theory coupled to linearised gravity, and compares different Dirac observables.
Contribution
It introduces a novel gravitational decoherence model for photons using Ashtekar-Barbero variables and relational formalism, extending previous scalar field models and analyzing observable choices.
Findings
Derived a Dirac observable set including photon and gravitational wave components.
Formulated a second-order time convolutionless master equation for the coupled system.
Showed structural consistency with previous photon decoherence models using ADM variables.
Abstract
We formulate a model of gravitationally induced decoherence for photons starting from Maxwell theory coupled to linearised gravity, expressed in terms of Ashtekar-Barbero variables and treated as an open quantum field theoretic system. In contrast to quantum mechanical models, the interaction between the system (Maxwell field) and the environment (gravitational field) is not postulated phenomenologically, but is instead dictated by the underlying action in a post-Minkowskian approximation. This framework extends earlier models for a scalar field and enables a more detailed analysis of the role of dynamical reference fields (clocks) within the relational formalism. We show that, for a suitable choice of geometrical clocks together with a U(1)-Gauss clock, and by employing an appropriate combination of the observable map and its dual, the resulting Dirac observables are given directly by…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Cosmology and Gravitation Theories · Quantum Mechanics and Applications
