A thermodynamically consistent approach to the energy costs of quantum measurements

IF 5.1 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2025-01-28 DOI:10.22331/q-2025-01-28-1614
Camille L Latune, Cyril Elouard
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Abstract

Considering a general microscopic model for a quantum measuring apparatus comprising a quantum probe coupled to a thermal bath, we analyze the energetic resources necessary for the realization of a quantum measurement, which includes the creation of system-apparatus correlations, the irreversible transition to a statistical mixture of definite outcomes, and the apparatus resetting. Crucially, we do not resort to another quantum measurement to capture the emergence of objective measurement results, but rather exploit the properties of the thermal bath which redundantly records the measurement result in its degrees of freedom, naturally implementing the paradigm of quantum Darwinism. In practice, this model allows us to perform a quantitative thermodynamic analysis of the measurement process. From the expression of the second law, we show how the minimal required work depends on the energy variation of the system being measured plus information-theoretic quantities characterizing the performance of the measurement – efficiency and completeness. Additionally, we show that it is possible to perform a thermodynamically reversible measurement, thus reaching the minimal work expenditure, and provide the corresponding protocol. Finally, for finite-time measurement protocols, we illustrate the increasing work cost induced by rising entropy production inherent in finite-time thermodynamic processes. This highlights an emerging trade-off between velocity of the measurement and work cost, on top of a trade-off between efficiency of the measurement and work cost. We apply those findings to bring new insights in the thermodynamic balance of the measurement-powered quantum engines.
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量子测量能量消耗的热力学一致方法
考虑到一个由量子探针耦合到热浴的量子测量装置的一般微观模型,我们分析了实现量子测量所需的能量资源,包括系统-设备相关性的创建,向确定结果的统计混合物的不可逆过渡以及设备重置。至关重要的是,我们没有诉诸另一个量子测量来捕捉客观测量结果的出现,而是利用热浴的特性,在其自由度中冗余记录测量结果,自然地实现量子达尔文主义范式。在实践中,该模型允许我们对测量过程进行定量的热力学分析。从第二定律的表达式中,我们展示了最小所需功如何取决于被测量系统的能量变化以及表征测量性能的信息论量-效率和完整性。此外,我们表明有可能进行热力学可逆测量,从而达到最小的工作支出,并提供相应的协议。最后,对于有限时间的测量方案,我们说明了有限时间热力学过程中固有的熵产增加所引起的工作成本增加。这突出了度量速度和工作成本之间的权衡,以及度量效率和工作成本之间的权衡。我们应用这些发现为测量驱动的量子引擎的热力学平衡带来了新的见解。
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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.
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