论文标题

激光冷却超出速率方程:量子热力学的方法

Laser Cooling Beyond Rate Equations: Approaches From Quantum Thermodynamics

论文作者

Murphy, C. N., Tude, L. Toledo, Eastham, P. R.

论文摘要

可以通过用激光驱动杂质离子来冷却固体,从而使其从晶格声子传递到电磁环境。这体现了量子热机,该量子热机使用量子系统作为工作介质在储层之间传递热量。我们回顾了Bloch-Redfield方程的推导,该量子系统的量子系统耦合到储层,并使用计数字段来计算热电流。我们使用此方程式的完整形式,仅使弱耦合和马尔可夫近似值来计算简单的激光冷却模型的冷却能力。我们将其预测与其他两个时局的主方程进行了比较:整个Bloch-Redfield方程的世俗近似以及在没有驾驶的情况下预期的声子过渡期望的lindblad形式。我们得出的结论是,在弱驾驶和强驾驶方案中,完整的Bloch-Redfield方程为热电流提供了准确的结果,而其他形式的适用性更有限。我们的结果支持在量子热机中使用Bloch-Redfield方程,尽管它们具有非物理结果的潜力。

Solids can be cooled by driving impurity ions with lasers, allowing them to transfer heat from the lattice phonons to the electromagnetic surroundings. This exemplifies a quantum thermal machine, which uses a quantum system as a working medium to transfer heat between reservoirs. We review the derivation of the Bloch-Redfield equation for a quantum system coupled to a reservoir, and its extension, using counting fields, to calculate heat currents. We use the full form of this equation, which makes only the weak-coupling and Markovian approximations, to calculate the cooling power for a simple model of laser cooling. We compare its predictions with two other time-local master equations: the secular approximation to the full Bloch-Redfield equation, and the Lindblad form expected for phonon transitions in the absence of driving. We conclude that the full Bloch-Redfield equation provides accurate results for the heat current in both the weak- and strong- driving regimes, whereas the other forms have more limited applicability. Our results support the use of Bloch-Redfield equations in quantum thermal machines, in spite of their potential to give unphysical results.

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