Abstract

Although quantum coherence is a well known phenomenon in quantum information theory and quantum optics, it has been investigated from the resource theory perspective only recently. Furthermore, quantum coherence has important implications in relativistic quantum information where the degradation of entanglement can be attributed to decoherence. In this paper, we investigate the quantum coherence of 1+1 Dirac field modes localized in a cavity as observed by two relatively accelerated observers. The acceleration is assigned very small values and its effects are investigated in a perturbative regime. For this purpose, we use α parameterized two-qubit pure entangled state and a Werner state. We find that coherence shows a periodic degradation due to accelerated motion. However, this degradation can be balanced by adjusting the durations of uniform and accelerated motion. Moreover, it is found that dynamics of quantum coherence closely resembles that of entanglement under the same settings. This similarity confirms the recent attempts to relate the resource theories of coherence and entanglement in a relativistic regime.

Highlights

  • Quantum coherence, emerging from quantum superposition principle, plays a pivotal role in quantum mechanics applications that are considered impossible within the realm of classical mechanics [1,2]

  • Results in Physics 19 (2020) 103302 information has emerged as a vibrant field of research which envisages the general relativistic effects on quantum resources like quantum entanglement, quantum discord, fidelity of teleportation and Bell nonlocality [13,14,15,16,17,18,19,20,21,22]

  • In order to investigate the similarity in the dynamics of quantum coherence and quantum entanglement for Werner state, we resort to finding concurrence [39] using the same setting

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Summary

Introduction

Quantum coherence, emerging from quantum superposition principle, plays a pivotal role in quantum mechanics applications that are considered impossible within the realm of classical mechanics [1,2]. We investigate the quantum coherence of (1 + 1) Dirac field modes localized in a cavity as observed by two relatively accelerated observers.

Results
Conclusion
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