论文标题
量子多体系统中非高斯相关性的衰减和复发
Decay and recurrence of non-Gaussian correlations in a quantum many-body system
论文作者
论文摘要
高斯模型提供了许多量子多体系统的出色有效描述,从冷凝物质系统一直到中子恒星。当相互作用较弱时,高斯状态在平衡处是常见的。最近,有人提出,他们还可以从非相互作用动力学下发展的非高斯初始状态动态出现。在这项工作中,我们介绍了量子多体系统中高斯相关性的这种动态出现的实验观察。这种非平衡进化是通过突然关闭观察到的集体自由度之间的有效相互作用而触发的,同时留下了显微镜成分之间的相互作用之间的相互作用。从与正弦模型一致的高度非高斯相关性开始,我们观察到一个高斯状态会随着时间的流逝而出现,如量子场中第四和第六阶连接的相关性的衰减所揭示的那样。对这种动力学的描述需要一种新的机制,即高斯相关性的出现,这与广泛的量子多体系统有关。在我们具有无效有效自由度的封闭系统中,我们不会预期完全热化。通过观察非高斯相关性的复发来证实对初始状态的记忆。
Gaussian models provide an excellent effective description of many quantum many-body systems ranging from condensed matter systems all the way to neutron stars. Gaussian states are common at equilibrium when the interactions are weak. Recently it was proposed that they can also emerge dynamically from a non-Gaussian initial state evolving under non-interacting dynamics. In this work, we present the experimental observation of such a dynamical emergence of Gaussian correlations in a quantum many-body system. This non-equilibrium evolution is triggered by abruptly switching off the effective interaction between the observed collective degrees of freedom, while leaving the interactions between the microscopic constituents unchanged. Starting from highly non-Gaussian correlations, consistent with the sine-Gordon model, we observe a Gaussian state to emerge over time as revealed by the decay of the fourth and sixth order connected correlations in the quantum field. A description of this dynamics requires a novel mechanism for the emergence of Gaussian correlations, which is relevant for a wide class of quantum many-body systems. In our closed system with non-interacting effective degrees of freedom, we do not expect full thermalization. This memory of the initial state is confirmed by observing recurrences of non-Gaussian correlations.