Superpositions of thermalisations in relativistic quantum field theory

IF 5.1 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2025-02-11 DOI:10.22331/q-2025-02-11-1629
Joshua Foo, Magdalena Zych
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Abstract

Recent results in relativistic quantum information and quantum thermodynamics have independently shown that in the quantum regime, a system may fail to thermalise when subject to quantum-controlled application of the same, single thermalisation channel. For example, an accelerating system with fixed proper acceleration is known to thermalise to an acceleration-dependent temperature, known as the Unruh temperature. However, the same system in a superposition of spatially translated trajectories that share the same proper acceleration fails to thermalise. Here, we provide an explanation of these results using the framework of quantum field theory in relativistic noninertial reference frames. We show how a probe that accelerates in a superposition of spatial translations interacts with incommensurate sets of field modes. In special cases where the modes are orthogonal (for example, when the Rindler wedges are translated in a direction orthogonal to the plane of motion), thermalisation does indeed result, corroborating the here provided explanation. We then discuss how this description relates to an information-theoretic approach aimed at studying quantum aspects of temperature through quantum-controlled thermalisations. The present work draws a connection between research in quantum information, relativistic physics, and quantum thermodynamics, in particular showing that relativistic quantum effects can provide a natural realisation of quantum thermodynamical scenarios.
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相对论量子场论中热化的叠加
相对论量子信息和量子热力学的最新结果分别表明,在量子体系中,当受到相同的单一热化通道的量子控制应用时,系统可能无法热化。例如,已知具有固定适当加速度的加速系统会热化到与加速度相关的温度,称为Unruh温度。然而,在具有相同固有加速度的空间平移轨迹叠加中的同一系统不能热化。在这里,我们利用量子场论的框架在相对论非惯性参照系中对这些结果进行了解释。我们展示了在空间平移叠加中加速的探针如何与不相称的场模式集相互作用。在模态正交的特殊情况下(例如,当伦德勒楔在与运动平面正交的方向上平移时),确实会产生热化,从而证实了这里提供的解释。然后,我们讨论了这种描述如何与旨在通过量子控制的热化研究温度的量子方面的信息理论方法相关联。目前的工作将量子信息、相对论物理和量子热力学的研究联系起来,特别是表明相对论量子效应可以提供量子热力学场景的自然实现。
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来源期刊
Quantum
Quantum Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
9.20
自引率
10.90%
发文量
241
审稿时长
16 weeks
期刊介绍: Quantum is an open-access peer-reviewed journal for quantum science and related fields. Quantum is non-profit and community-run: an effort by researchers and for researchers to make science more open and publishing more transparent and efficient.
期刊最新文献
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