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Autori principali: Jakubec, Clemens, Bartleson, Aaron, Milonni, Peter W., Sinha, Kanu
Natura: Preprint
Pubblicazione: 2026
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Accesso online:https://arxiv.org/abs/2605.13677
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author Jakubec, Clemens
Bartleson, Aaron
Milonni, Peter W.
Sinha, Kanu
author_facet Jakubec, Clemens
Bartleson, Aaron
Milonni, Peter W.
Sinha, Kanu
contents We analyze the decoherence of a particle's spatial superposition moving along a stationary worldline through the Minkowski vacuum. The particle is modeled via an internal degree of freedom that couples to a scalar field, and an external degree of freedom, i.e., its quantized center-of-mass motion around the stationary worldline. Assuming a separation of time scales between the particle's internal and external dynamics, we first obtain an effective red-shifted polarizability of the particle, characterizing the trajectory-dependent linear response of the internal oscillator to the field. We then derive a quantum Brownian motion master equation for the particle's center of mass, under the Born-Markov approximation, which describes its decoherence in the position basis, as well as, Hamiltonian modifications corresponding to a dispersive potential. The resulting decoherence has two components: (1) arising from a modified field spectrum observed by the particle; and (2) due to a differential time-dilation over the particle's extended spatial wavefunction. For stationary trajectories, both contributions take an effectively thermal form. We evaluate the decoherence rates for two specific cases of hyperbolic and uniform circular motion.
format Preprint
id arxiv_https___arxiv_org_abs_2605_13677
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Decoherence of spatial superpositions along stationary worldlines
Jakubec, Clemens
Bartleson, Aaron
Milonni, Peter W.
Sinha, Kanu
Quantum Physics
General Relativity and Quantum Cosmology
Atomic Physics
We analyze the decoherence of a particle's spatial superposition moving along a stationary worldline through the Minkowski vacuum. The particle is modeled via an internal degree of freedom that couples to a scalar field, and an external degree of freedom, i.e., its quantized center-of-mass motion around the stationary worldline. Assuming a separation of time scales between the particle's internal and external dynamics, we first obtain an effective red-shifted polarizability of the particle, characterizing the trajectory-dependent linear response of the internal oscillator to the field. We then derive a quantum Brownian motion master equation for the particle's center of mass, under the Born-Markov approximation, which describes its decoherence in the position basis, as well as, Hamiltonian modifications corresponding to a dispersive potential. The resulting decoherence has two components: (1) arising from a modified field spectrum observed by the particle; and (2) due to a differential time-dilation over the particle's extended spatial wavefunction. For stationary trajectories, both contributions take an effectively thermal form. We evaluate the decoherence rates for two specific cases of hyperbolic and uniform circular motion.
title Decoherence of spatial superpositions along stationary worldlines
topic Quantum Physics
General Relativity and Quantum Cosmology
Atomic Physics
url https://arxiv.org/abs/2605.13677