论文标题
微观热发动机的量子跳跃方法
Quantum jump approach to microscopic heat engines
论文作者
论文摘要
现代技术很快就可以通过计算其工作系统发射和吸收的光子来研究量子热发动机的操作周期。使用量子跳跃方法进行开放系统动力学,我们表明,此类实验将访问一组可观察到的物品,以确定有限的发动机周期中功率和效率之间的权衡。通过分析热力学通量(例如热量和熵产生)的单跳统计,我们获得了一家关于微观热发动机功能的一般界限。我们的新界限统一了两个早期的结果,并接受了单光子测量的透明物理解释。此外,这些界限证实,驾驶引起的连贯性会导致耗散的增加,从而抑制了弱耦合方案中缓慢驱动的量子发动机的效率。基于超导Qubit的纳米级热发动机是实验相关的例子和我们理论发展的指导范式。
Modern technologies could soon make it possible to investigate the operation cycles of quantum heat engines by counting the photons that are emitted and absorbed by their working systems. Using the quantum jump approach to open-system dynamics, we show that such experiments would give access to a set of observables that determine the trade-off between power and efficiency in finite-time engine cycles. By analyzing the single-jump statistics of thermodynamic fluxes such as heat and entropy production, we obtain a family of general bounds on the power of microscopic heat engines. Our new bounds unify two earlier results and admit a transparent physical interpretation in terms of single-photon measurements. In addition, these bounds confirm that driving-induced coherence leads to an increase in dissipation that suppresses the efficiency of slowly driven quantum engines in the weak-coupling regime. A nanoscale heat engine based on a superconducting qubit serves as an experimentally relevant example and a guiding paradigm for the development of our theory.