论文标题
使用被困的离子探测相干量子热力学
Probing coherent quantum thermodynamics using a trapped ion
论文作者
论文摘要
量子热力学旨在掌握热力学定律,因为它们适用于在深度量子状态下运行的热机器,这种制度预计相干和纠缠将会至关重要。但是,尽管取得了长足的进步,但仍很难开发热机器,其中观察到这种量子效应至关重要。在这项工作中,我们报告了对经典工作波动 - 隔离关系(FDR)的真实量子校正的实验测量。我们采用单个被困的离子量子量子,通过激光脉冲实现热化和相干驱动,以实现量子相干的工作方案。一系列两次工作测量的结果显示了与最近经过证明的量子工作FDR的协议,违反了经典的FDR超过$ 10.9 $的标准偏差。此外,我们确定我们的结果与10个以上的标准偏差与任何垃圾邮件误差诱导的校正都不兼容。最后,我们表明量子校正在高温极限中消失,再次与理论预测一致。
Quantum thermodynamics is aimed at grasping thermodynamic laws as they apply to thermal machines operating in the deep quantum regime, a regime in which coherences and entanglement are expected to matter. Despite substantial progress, however, it has remained difficult to develop thermal machines in which such quantum effects are observed to be of pivotal importance. In this work, we report an experimental measurement of the genuine quantum correction to the classical work fluctuation-dissipation relation (FDR). We employ a single trapped ion qubit, realizing thermalization and coherent drive via laser pulses, to implement a quantum coherent work protocol. The results from a sequence of two-time work measurements display agreement with the recently proven quantum work FDR, violating the classical FDR by more than $10.9$ standard deviations. We furthermore determine that our results are incompatible with any SPAM error-induced correction to the FDR by more than 10 standard deviations. Finally, we show that the quantum correction vanishes in the high-temperature limit, again in agreement with theoretical predictions.