Sazhin Alexander, Gladilin Vladimir N, Erglis Andris, Hellmann Göran, Vewinger Frank, Weitz Martin, Wouters Michiel, Schmitt Julian
Institut für Angewandte Physik, Universität Bonn, Bonn, Germany.
TQC, Universiteit Antwerpen, Antwerpen, Belgium.
Nat Commun. 2024 Jun 3;15(1):4730. doi: 10.1038/s41467-024-49064-9.
The quantum regression theorem states that the correlations of a system at two different times are governed by the same equations of motion as the single-time averages. This provides a powerful framework for the investigation of the intrinsic microscopic behaviour of physical systems by studying their macroscopic response to a controlled external perturbation. Here we experimentally demonstrate that the two-time particle number correlations in a photon Bose-Einstein condensate inside a dye-filled microcavity exhibit the same dynamics as the response of the condensate to a sudden perturbation of the dye molecule bath. This confirms the regression theorem for a quantum gas, and, moreover, demonstrates it in an unconventional form where the perturbation acts on the bath and only the condensate response is monitored. For strong perturbations, we observe nonlinear relaxation dynamics which our microscopic theory relates to the equilibrium fluctuations, thereby extending the regression theorem beyond the regime of linear response.
量子回归定理指出,一个系统在两个不同时刻的相关性由与单时刻平均值相同的运动方程所支配。这为通过研究物理系统对受控外部扰动的宏观响应来探究其内在微观行为提供了一个强大的框架。在此,我们通过实验证明,染料填充微腔内的光子玻色 - 爱因斯坦凝聚体中的双时刻粒子数相关性表现出与凝聚体对染料分子浴的突然扰动的响应相同的动力学。这证实了量子气体的回归定理,而且,以一种非常规的形式展示了该定理,即扰动作用于浴,而仅监测凝聚体的响应。对于强扰动,我们观察到非线性弛豫动力学,我们的微观理论将其与平衡涨落联系起来,从而将回归定理扩展到线性响应范围之外。