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Quantum and Information Thermodynamics: A Unifying Framework Based on Repeated Interactions

机译:量子与信息热力学:基于重复相互作用的统一框架

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We expand the standard thermodynamic framework of a system coupled to a thermal reservoir by considering a stream of independently prepared units repeatedly put into contact with the system. These units can be in any nonequilibrium state and interact with the system with an arbitrary strength and duration. We show that this stream constitutes an effective resource of nonequilibrium free energy, and we identify the conditions under which it behaves as a heat, work, or information reservoir. We also show that this setup provides a natural framework to analyze information erasure (“Landauer’s principle”) and feedback-controlled systems (“Maxwell’s demon”). In the limit of a short system-unit interaction time, we further demonstrate that this setup can be used to provide a thermodynamically sound interpretation to many effective master equations. We discuss how nonautonomously driven systems, micromasers, lasing without inversion and the electronic Maxwell demon can be thermodynamically analyzed within our framework. While the present framework accounts for quantum features (e.g., squeezing, entanglement, coherence), we also show that quantum resources do not offer any advantage compared to classical ones in terms of the maximum extractable work.
机译:通过考虑反复与系统接触的独立准备单元的流,我们扩展了与储热器耦合的系统的标准热力学框架。这些单元可以处于任何非平衡状态,并以任意强度和持续时间与系统交互。我们证明了这种流构成了一种非平衡自由能的有效资源,并且我们确定了该流作为热,功或信息储存库的条件。我们还表明,该设置提供了一个自然的框架来分析信息擦除(“ Landauer原理”)和反馈控制系统(“ Maxwell的恶魔”)。在较短的系统单元交互时间的限制内,我们进一步证明了该设置可用于为许多有效的主方程式提供热力学上的合理解释。我们讨论如何在我们的框架内热力学分析非自主驱动系统,微激光器,无反转激光和麦克斯韦电子恶魔。尽管目前的框架考虑了量子特征(例如,压缩,纠缠,相干),但我们还表明,就最大可提取功而言,与经典量子资源相比,量子资源没有任何优势。

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