Discrete time crystals in the presence of non-Markovian dynamics

IF 2.9 2区 物理与天体物理 Q2 Physics and Astronomy Physical Review A Pub Date : 2024-07-10 DOI:10.1103/physreva.110.012208
Bandita Das, Noufal Jaseem, Victor Mukherjee
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Abstract

We study discrete time crystals (DTCs) in periodically driven quantum systems, in the presence of non-Markovian dissipation. In contrast to DTCs observed in earlier works in the presence of Markovian dynamics, using the open Dicke model in presence of Jaynes-Cummings-like dissipation, we show that non-Markovian regime can be highly beneficial for stabilizing DTCs over a wide range of parameter values. This may be attributed to periodically varying dissipation rates even at long times in the case of non-Markovian dynamics. Further the Markovian and non-Markovian regimes show sharp distinctions for intermediate strengths of the dissipator coefficient, with a time-independent steady state in the Markovian regime being replaced by varied dynamical phases, including DTC order, in the non-Markovian regime. We also verify the robustness of the DTC phase in the non-Markovian regime by introducing errors both in the Hamiltonian as well as in the dissipation. Our study shows the possibility of using DTC as a probe for non-Markovian dynamics in periodically modulated open quantum systems, at long times.

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存在非马尔可夫动力学的离散时间晶体
我们研究了存在非马尔可夫耗散的周期驱动量子系统中的离散时间晶体(DTC)。与早期研究中在马尔可夫动力学条件下观察到的离散时间晶体不同,我们利用开放的迪克模型,在杰尼斯-康明斯耗散条件下观察到的离散时间晶体表明,非马尔可夫机制非常有利于在广泛的参数值范围内稳定离散时间晶体。这可能是因为在非马尔可夫动力学情况下,耗散率即使在长时间内也会周期性变化。此外,马尔可夫机制和非马尔可夫机制在耗散系数的中间强度上显示出明显的区别,马尔可夫机制中与时间无关的稳定状态被非马尔可夫机制中包括 DTC 秩在内的不同动力学阶段所取代。我们还通过在哈密顿和耗散中引入误差,验证了非马尔可夫机制中 DTC 阶段的稳健性。我们的研究表明,在周期性调制的开放量子系统中,可以使用 DTC 作为长时间非马尔可夫动力学的探针。
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来源期刊
Physical Review A
Physical Review A 物理-光学
CiteScore
5.40
自引率
24.10%
发文量
0
审稿时长
2.2 months
期刊介绍: Physical Review A (PRA) publishes important developments in the rapidly evolving areas of atomic, molecular, and optical (AMO) physics, quantum information, and related fundamental concepts. PRA covers atomic, molecular, and optical physics, foundations of quantum mechanics, and quantum information, including: -Fundamental concepts -Quantum information -Atomic and molecular structure and dynamics; high-precision measurement -Atomic and molecular collisions and interactions -Atomic and molecular processes in external fields, including interactions with strong fields and short pulses -Matter waves and collective properties of cold atoms and molecules -Quantum optics, physics of lasers, nonlinear optics, and classical optics
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