Irreversible degradation of quantum coherence under relativistic motion

Jieci Wang, Zehua Tian, Jiliang Jing, and Heng Fan
Phys. Rev. A 93, 062105 – Published 2 June 2016

Abstract

We study the dynamics of quantum coherence under Unruh thermal noise and seek under which condition the coherence can be frozen in a relativistic setting. We find that the frozen condition is either (i) the initial state is prepared as an incoherence state or (ii) the detectors have no interaction with the external field. That is to say, the decoherence of the detectors' quantum state is irreversible under the influence of thermal noise induced by Unruh radiation. It is shown that quantum coherence approaches zero only in the limit of an infinite acceleration, while quantum entanglement could reduce to zero for a finite acceleration. It is also demonstrated that the robustness of quantum coherence is better than entanglement under the influence of the atom-field interaction for an extremely large acceleration. Therefore, quantum coherence is more robust than entanglement in an accelerating system and the coherence-type quantum resources are more accessible for relativistic quantum information processing tasks.

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  • Received 24 February 2016

DOI:https://doi.org/10.1103/PhysRevA.93.062105

©2016 American Physical Society

Physics Subject Headings (PhySH)

General PhysicsQuantum Information, Science & Technology

Authors & Affiliations

Jieci Wang1,2,*, Zehua Tian3, Jiliang Jing1,†, and Heng Fan2

  • 1Department of Physics, Collaborative Innovation Center for Quantum Effects, and Key Laboratory of Low Dimensional Quantum Structures and Quantum Control of Ministry of Education, Hunan Normal University, Changsha, Hunan 410081, China
  • 2Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China
  • 3Institute of Theoretical Physics, University of Warsaw, Pasteura 5, 02-093 Warsaw, Poland

  • *jcwang@hunnu.edu.cn
  • jljing@hunnu.edu.cn

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Issue

Vol. 93, Iss. 6 — June 2016

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