论文标题
由原子碰撞驱动的可逆量子热发动机
An endoreversible quantum heat engine driven by atomic collisions
论文作者
论文摘要
量子热发动机经历与离散能量光谱有关的量子波动。这种波动质疑微观领域中量子发动机的可靠操作。我们在这里意识到浸入超速蛋白酶浴中的大型准旋转状态下,可内化的量子奥托循环。可内在的机器内部可逆,仅通过热接触才会发生不可逆的损失。我们采用对机器和浴室的量子控制来抑制内部耗散,并调节通过非弹性自旋交换碰撞发生的传热方向。另外,我们还使用单个原子的全计数统计数据来监测单个量子水平的发动机和浴室之间的热量交换,并评估功率输出的平均值和差异。我们优化了量子发动机的性能以及稳定性,可实现高效率,大功率输出和较小的功率输出波动。
Quantum heat engines are subjected to quantum fluctuations related to their discrete energy spectra. Such fluctuations question the reliable operation of quantum engines in the microscopic realm. We here realize an endoreversible quantum Otto cycle in the large quasi-spin states of Cesium impurities immersed in an ultracold Rubidium bath. Endoreversible machines are internally reversible and irreversible losses only occur via thermal contact. We employ quantum control over both machine and bath to suppress internal dissipation and regulate the direction of heat transfer that occurs via inelastic spin-exchange collisions. We additionally use full-counting statistics of individual atoms to monitor heat exchange between engine and bath at the level of single quanta, and evaluate average and variance of the power output. We optimize the performance as well as the stability of the quantum engine, achieving high efficiency, large power output and small power output fluctuations.