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腔和电路量子电动力学系统中的离散时间结晶态。

Discrete Time-Crystalline Order in Cavity and Circuit QED Systems.

机构信息

Department of Physics, University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.

RIKEN Center for Emergent Matter Science (CEMS), Wako, Saitama 351-0198, Japan.

出版信息

Phys Rev Lett. 2018 Jan 26;120(4):040404. doi: 10.1103/PhysRevLett.120.040404.

Abstract

Discrete time crystals are a recently proposed and experimentally observed out-of-equilibrium dynamical phase of Floquet systems, where the stroboscopic dynamics of a local observable repeats itself at an integer multiple of the driving period. We address this issue in a driven-dissipative setup, focusing on the modulated open Dicke model, which can be implemented by cavity or circuit QED systems. In the thermodynamic limit, we employ semiclassical approaches and find rich dynamical phases on top of the discrete time-crystalline order. In a deep quantum regime with few qubits, we find clear signatures of a transient discrete time-crystalline behavior, which is absent in the isolated counterpart. We establish a phenomenology of dissipative discrete time crystals by generalizing the Landau theory of phase transitions to Floquet open systems.

摘要

离散时间晶体是最近提出并在实验中观察到的弗洛埃特系统的非平衡动力学相,其中局域可观测量的频闪动力学在驱动周期的整数倍处重复。我们在驱动耗散设置中解决了这个问题,重点研究了调制的开放 Dicke 模型,该模型可以通过腔或电路 QED 系统来实现。在热力学极限下,我们采用半经典方法,在离散时间晶体有序之上发现了丰富的动力学相。在具有少数量子比特的深量子 regime 中,我们发现了瞬态离散时间晶体行为的明显特征,而在孤立的对应物中则不存在。我们通过将朗道相变理论推广到弗洛埃特开放系统,建立了耗散离散时间晶体的现象学。

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