论文标题
通过波动效应确定的开放多体系统中的dicke过渡
Dicke transition in open many-body systems determined by fluctuation effects
论文作者
论文摘要
近年来,一个重要的实验成就是量子物质和量子光的强耦合。实现从高量光谐振器中的超速原子气体到与THZ空腔相连的电子系统。量子光场的耗散性质和与量子物质的全局耦合导致许多令人兴奋的现象,例如发生耗散量子相过渡到自组织的外来相位。这些与腔场结合的物质耗散杂种系统的理论处理非常具有挑战性。以前,应用了通常的平均场方法,将自组织阶段的出现描述为颗粒的零温过渡,即地基态DICKE跃迁。在这里,我们开发了一种新方法,该方法将平均场方法与平均场外波动的扰动处理相结合,这在热力学极限中变得精确。我们认为,这些波动对于确定过渡的混合状态(有限温度)和解除自组织状态的普遍特性至关重要。我们通过比较时间依赖性基质产物状态计算来验证结果。
In recent years, one important experimental achievement was the strong coupling of quantum matter and quantum light. Realizations reach from ultracold atomic gases in high-finesse optical resonators to electronic systems coupled to THz cavities. The dissipative nature of the quantum light field and the global coupling to the quantum matter leads to many exciting phenomena such as the occurrence of dissipative quantum phase transition to self-organized exotic phases. The theoretical treatment of these dissipative hybrid systems of matter coupled to a cavity field is very challenging. Previously, often mean-field approaches were applied which characterize the emergence of self-organized phases as a zero-temperature transition for the particles, a ground-state Dicke transition. Here we develop a new approach which combines a mean-field approach with a perturbative treatment of fluctuations beyond mean-field, which becomes exact in the thermodynamic limit. We argue that these fluctuations are crucial in order to determine the mixed state (finite temperature) character of the transition and to unravel universal properties of the self-organized states. We validate our results by comparing to time-dependent matrix-product-state calculations.