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量子相干对朗道尔原理的影响。

Effect of Quantum Coherence on Landauer's Principle.

作者信息

Hashimoto Kazunari, Uchiyama Chikako

机构信息

Faculty of Engineering, University of Yamanashi, 4-3-11 Takeda, Kofu 400-8511, Yamanashi, Japan.

出版信息

Entropy (Basel). 2022 Apr 13;24(4):548. doi: 10.3390/e24040548.

Abstract

Landauer's principle provides a fundamental lower bound for energy dissipation occurring with information erasure in the quantum regime. While most studies have related the entropy reduction incorporated with the erasure to the lower bound (entropic bound), recent efforts have also provided another lower bound associated with the thermal fluctuation of the dissipated energy (thermodynamic bound). The coexistence of the two bounds has stimulated comparative studies of their properties; however, these studies were performed for systems where the time-evolution of diagonal (population) and off-diagonal (coherence) elements of the density matrix are decoupled. In this paper, we aimed to broaden the comparative study to include the influence of quantum coherence induced by the tilted system-reservoir interaction direction. By examining their dependence on the initial state of the information-bearing system, we find that the following properties of the bounds are generically held regardless of whether the influence of the coherence is present or not: the entropic bound serves as the tighter bound for a sufficiently mixed initial state, while the thermodynamic bound is tighter when the purity of the initial state is sufficiently high. The exception is the case where the system dynamics involve only phase relaxation; in this case, the two bounds coincide when the initial coherence is zero; otherwise, the thermodynamic bound serves the tighter bound. We also find the quantum information erasure inevitably accompanies constant energy dissipation caused by the creation of system-reservoir correlation, which may cause an additional source of energetic cost for the erasure.

摘要

兰道尔原理为量子领域中信息擦除时发生的能量耗散提供了一个基本下限。虽然大多数研究将与擦除相关的熵减少与下限(熵界)联系起来,但最近的研究也给出了另一个与耗散能量的热涨落相关的下限(热力学界)。这两个界限的共存激发了对它们性质的比较研究;然而,这些研究是针对密度矩阵的对角(布居数)和非对角(相干性)元素的时间演化解耦的系统进行的。在本文中,我们旨在拓宽比较研究的范围,以包括倾斜的系统 - 储库相互作用方向所诱导的量子相干性的影响。通过研究它们对承载信息系统初始状态的依赖性,我们发现,无论相干性的影响是否存在,界限的以下性质通常成立:对于足够混合的初始状态,熵界是更紧的界限,而当初始状态的纯度足够高时,热力学界更紧。例外情况是系统动力学仅涉及相位弛豫的情况;在这种情况下,当初始相干性为零时,两个界限重合;否则,热力学界是更紧的界限。我们还发现,量子信息擦除不可避免地伴随着由系统 - 储库相关性的产生所导致的恒定能量耗散,这可能会导致擦除的额外能量成本来源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33dc/9029971/7a432da4883e/entropy-24-00548-g001.jpg

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