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Main Authors: Qiu, Linghui, Zhang, Jialin, Yu, Hongwei
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2603.16084
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author Qiu, Linghui
Zhang, Jialin
Yu, Hongwei
author_facet Qiu, Linghui
Zhang, Jialin
Yu, Hongwei
contents We have investigated the geometric phase acquired by a uniformly accelerated two-level atom coupled to vacuum fluctuations of a massless conformal scalar field in Anti-de Sitter (AdS) spacetime. Using the open-quantum-system formalism, we calculate the phase under three boundary conditions (Dirichlet, transparent and Neumann) imposed on the field at the AdS boundary. Our findings reveal a sharp distinction between subcritical and supercritical accelerations. For subcritical accelerations, the atom evolves effectively as an isolated system, and the geometric phase is independent of both the AdS radius and the acceleration. For supercritical accelerations, however, topology-acceleration-induced phase corrections emerge and display pronounced boundary-condition dependence. When the AdS radius is smaller than the atomic proper wavelength, the magnitude of the correction at large accelerations follows the ordering Neumann$>$transparent$>$Dirichlet. Moreover, over a finite interval of the atomic weight parameter, both Dirichlet and Neumann boundary conditions produce a richer peak structure in the phase correction than the transparent case, with the detailed pattern governed by the competition between the acceleration and the atomic energy gap. Finally, for transparent boundary conditions in the supercritical regime, the AdS phase correction closely resembles its de Sitter (dS) counterpart.
format Preprint
id arxiv_https___arxiv_org_abs_2603_16084
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Geometric phase for an accelerated two-level atom in AdS spacetime
Qiu, Linghui
Zhang, Jialin
Yu, Hongwei
Quantum Physics
High Energy Physics - Theory
We have investigated the geometric phase acquired by a uniformly accelerated two-level atom coupled to vacuum fluctuations of a massless conformal scalar field in Anti-de Sitter (AdS) spacetime. Using the open-quantum-system formalism, we calculate the phase under three boundary conditions (Dirichlet, transparent and Neumann) imposed on the field at the AdS boundary. Our findings reveal a sharp distinction between subcritical and supercritical accelerations. For subcritical accelerations, the atom evolves effectively as an isolated system, and the geometric phase is independent of both the AdS radius and the acceleration. For supercritical accelerations, however, topology-acceleration-induced phase corrections emerge and display pronounced boundary-condition dependence. When the AdS radius is smaller than the atomic proper wavelength, the magnitude of the correction at large accelerations follows the ordering Neumann$>$transparent$>$Dirichlet. Moreover, over a finite interval of the atomic weight parameter, both Dirichlet and Neumann boundary conditions produce a richer peak structure in the phase correction than the transparent case, with the detailed pattern governed by the competition between the acceleration and the atomic energy gap. Finally, for transparent boundary conditions in the supercritical regime, the AdS phase correction closely resembles its de Sitter (dS) counterpart.
title Geometric phase for an accelerated two-level atom in AdS spacetime
topic Quantum Physics
High Energy Physics - Theory
url https://arxiv.org/abs/2603.16084