边界时间晶体的量子热力学

IF 5.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Science and Technology Pub Date : 2024-05-06 DOI:10.1088/2058-9565/ad3f42
Federico Carollo, Igor Lesanovsky, Mauro Antezza and Gabriele De Chiara
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引用次数: 0

摘要

时间平移对称性破缺是马尔可夫开放量子系统中出现非稳态多体相,即所谓时间晶体的一种机制。近年来,人们对时间晶体的动力学方面进行了广泛的探索。然而,人们对其热力学性质的了解却少得多,这也是由于这些相的内在非平衡性质造成的。在此,我们考虑了有限温度环境下的典型边界时间晶体系统,并证明了时间晶体相在任何温度下的持久性。此外,我们还分析了该模型的热力学方面,特别是研究了热流、功率交换和不可逆熵的产生。我们的研究揭示了维持非平衡态时间晶体相的热力学代价,并为描述时间晶体的特性提供了一个框架,使其成为量子传感等领域的可能资源。由于我们将热力学量与集体(磁化)算子的平均值和协方差联系在一起,因此我们的结果可以在实验中得到验证,例如使用被困离子或超导电路。
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Quantum thermodynamics of boundary time-crystals
Time-translation symmetry breaking is a mechanism for the emergence of non-stationary many-body phases, so-called time-crystals, in Markovian open quantum systems. Dynamical aspects of time-crystals have been extensively explored over the recent years. However, much less is known about their thermodynamic properties, also due to the intrinsic nonequilibrium nature of these phases. Here, we consider the paradigmatic boundary time-crystal system, in a finite-temperature environment, and demonstrate the persistence of the time-crystalline phase at any temperature. Furthermore, we analyze thermodynamic aspects of the model investigating, in particular, heat currents, power exchange and irreversible entropy production. Our work sheds light on the thermodynamic cost of sustaining nonequilibrium time-crystalline phases and provides a framework for characterizing time-crystals as possible resources for, e.g. quantum sensing. Our results may be verified in experiments, for example with trapped ions or superconducting circuits, since we connect thermodynamic quantities with mean value and covariance of collective (magnetization) operators.
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来源期刊
Quantum Science and Technology
Quantum Science and Technology Materials Science-Materials Science (miscellaneous)
CiteScore
11.20
自引率
3.00%
发文量
133
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. Quantum Science and Technology is a new multidisciplinary, electronic-only journal, devoted to publishing research of the highest quality and impact covering theoretical and experimental advances in the fundamental science and application of all quantum-enabled technologies.
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