Harrington P M, Tan D, Naghiloo M, Murch K W
Department of Physics, Washington University, St. Louis, Missouri 63130, USA.
Shenzhen Institute for Quantum Science and Engineering and Department of Physics, Southern University of Science and Technology, Shenzhen 518055, People's Republic of China.
Phys Rev Lett. 2019 Jul 12;123(2):020502. doi: 10.1103/PhysRevLett.123.020502.
In both thermodynamics and quantum mechanics, the arrow of time is characterized by the statistical likelihood of physical processes. We characterize this arrow of time for the continuous quantum measurement dynamics of a superconducting qubit. By experimentally tracking individual weak measurement trajectories, we compare the path probabilities of forward and backward-in-time evolution to develop an arrow of time statistic associated with measurement dynamics. We compare the statistics of individual trajectories to ensemble properties showing that the measurement dynamics obeys both detailed and integral fluctuation theorems, thus establishing the consistency between microscopic and macroscopic measurement dynamics.
在热力学和量子力学中,时间箭头都由物理过程的统计可能性来表征。我们针对超导量子比特的连续量子测量动力学来表征这种时间箭头。通过实验追踪单个弱测量轨迹,我们比较正向和反向时间演化的路径概率,以建立与测量动力学相关的时间箭头统计量。我们将单个轨迹的统计量与系综性质进行比较,结果表明测量动力学同时遵循详细涨落定理和积分涨落定理,从而确立了微观和宏观测量动力学之间的一致性。