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任何量子过程热力学耗散的初态依赖性。

Initial-state dependence of thermodynamic dissipation for any quantum process.

作者信息

Riechers Paul M, Gu Mile

机构信息

Nanyang Quantum Hub, School of Physical and Mathematical Sciences, Nanyang Technological University, 637371, Singapore, Singapore.

Complexity Institute, Nanyang Technological University, 637335 Singapore.

出版信息

Phys Rev E. 2021 Apr;103(4-1):042145. doi: 10.1103/PhysRevE.103.042145.

Abstract

Exact results about the nonequilibrium thermodynamics of open quantum systems at arbitrary timescales are obtained by considering all possible variations of initial conditions of a system. First we obtain a quantum-information theoretic equality for entropy production, valid for an arbitrary initial joint state of system and environment. For any finite-time process with a fixed initial environment, we then show that the system's loss of distinction-relative to the minimally dissipative state-exactly quantifies its thermodynamic dissipation. The quantum component of this dissipation is the change in coherence relative to the minimally dissipative state. Implications for quantum state preparation and local control are explored. For nonunitary processes-like the preparation of any particular quantum state-we find that mismatched expectations lead to divergent dissipation as the actual initial state becomes orthogonal to the anticipated one.

摘要

通过考虑系统初始条件的所有可能变化,可得到开放量子系统在任意时间尺度下非平衡热力学的精确结果。首先,我们得到了一个关于熵产生的量子信息理论等式,该等式对系统和环境的任意初始联合态均有效。对于任何具有固定初始环境的有限时间过程,我们证明了系统相对于最小耗散态的区分度损失精确地量化了其热力学耗散。这种耗散的量子分量是相对于最小耗散态的相干性变化。我们探讨了其对量子态制备和局部控制的影响。对于非酉过程,比如制备任何特定量子态,我们发现当实际初始态与预期初始态正交时,不匹配的期望会导致发散的耗散。

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