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Autonomous Quantum Clocks: Does Thermodynamics Limit Our Ability to Measure Time?

机译:自治量子时钟:热力学是否会限制我们测量时间的能力?

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Time remains one of the least well-understood concepts in physics, most notably in quantum mechanics. A central goal is to find the fundamental limits of measuring time. One of the main obstacles is the fact that time is not an observable and thus has to be measured indirectly. Here, we explore these questions by introducing a model of time measurements that is complete and autonomous. Specifically, our autonomous quantum clock consists of a system out of thermal equilibrium—a prerequisite for any system to function as a clock—powered by minimal resources, namely, two thermal baths at different temperatures. Through a detailed analysis of this specific clock model, we find that the laws of thermodynamics dictate a trade-off between the amount of dissipated heat and the clock’s performance in terms of its accuracy and resolution. Our results furthermore imply that a fundamental entropy production is associated with the operation of any autonomous quantum clock, assuming that quantum machines cannot achieve perfect efficiency at finite power. More generally, autonomous clocks provide a natural framework for the exploration of fundamental questions about time in quantum theory and beyond.
机译:时间仍然是物理学中最难理解的概念之一,尤其是在量子力学中。一个中心目标是找到测量时间的基本限制。主要障碍之一是时间不可观察,因此必须间接地进行测量。在这里,我们通过介绍完整且自主的时间测量模型来探讨这些问题。具体来说,我们的自主量子时钟由不平衡的系统组成,这是任何系统都必须充当时钟的先决条件,它由最少的资源(即两个处于不同温度的热浴)提供动力。通过对该特定时钟模型的详细分析,我们发现热力学定律要求在散热量和时钟性能之间在准确性和分辨率方面进行权衡。我们的结果进一步暗示,假设量子机器无法在有限的功率下实现完美的效率,那么基本的熵产生与任何自治量子时钟的运行都相关。更一般而言,自主时钟为探索有关量子理论及其后的时间的基本问题提供了自然的框架。

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