Rossi Massimiliano, Mancino Luca, Landi Gabriel T, Paternostro Mauro, Schliesser Albert, Belenchia Alessio
Niels Bohr Institute, University of Copenhagen, 2100 Copenhagen, Denmark.
Center for Hybrid Quantum Networks (Hy-Q), Niels Bohr Institute, University of Copenhagen, 2100 Copenhagen, Denmark.
Phys Rev Lett. 2020 Aug 21;125(8):080601. doi: 10.1103/PhysRevLett.125.080601.
The information on a quantum process acquired through measurements plays a crucial role in the determination of its nonequilibrium thermodynamic properties. We report on the experimental inference of the stochastic entropy production rate for a continuously monitored mesoscopic quantum system. We consider an optomechanical system subjected to continuous displacement Gaussian measurements and characterize the entropy production rate of the individual trajectories followed by the system in its stochastic dynamics, employing a phase-space description in terms of the Wigner entropy. Owing to the specific regime of our experiment, we are able to single out the informational contribution to the entropy production arising from conditioning the state on the measurement outcomes. Our experiment embodies a significant step towards the demonstration of full-scale control of fundamental thermodynamic processes at the mesoscopic quantum scale.
通过测量获得的关于量子过程的信息在确定其非平衡热力学性质中起着关键作用。我们报告了对一个连续监测的介观量子系统的随机熵产生率的实验推断。我们考虑一个受到连续位移高斯测量的光机械系统,并利用基于维格纳熵的相空间描述来表征系统在其随机动力学中所遵循的各个轨迹的熵产生率。由于我们实验的特定条件,我们能够分离出因根据测量结果对状态进行条件设定而对熵产生的信息贡献。我们的实验朝着在介观量子尺度上全面控制基本热力学过程的演示迈出了重要一步。