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存在耗散时多体局域化的稳健性。

Robustness of Many-Body Localization in the Presence of Dissipation.

作者信息

Levi Emanuele, Heyl Markus, Lesanovsky Igor, Garrahan Juan P

机构信息

School of Physics and Astronomy, University of Nottingham, Nottingham, NG7 2RD, United Kingdom.

Physik Department, Technische Universität München, 85747 Garching, Germany.

出版信息

Phys Rev Lett. 2016 Jun 10;116(23):237203. doi: 10.1103/PhysRevLett.116.237203. Epub 2016 Jun 9.

Abstract

Many-body localization (MBL) has emerged as a novel paradigm for robust ergodicity breaking in closed quantum many-body systems. However, it is not yet clear to which extent MBL survives in the presence of dissipative processes induced by the coupling to an environment. Here we study heating and ergodicity for a paradigmatic MBL system-an interacting fermionic chain subject to quenched disorder-in the presence of dephasing. We find that, even though the system is eventually driven into an infinite-temperature state, heating as monitored by the von Neumann entropy can progress logarithmically slowly, implying exponentially large time scales for relaxation. This slow loss of memory of initial conditions makes signatures of nonergodicity visible over a long, but transient, time regime. We point out a potential controlled realization of the considered setup with cold atomic gases held in optical lattices.

摘要

多体局域化(MBL)已成为一种用于在封闭量子多体系统中实现稳健遍历性破缺的新范式。然而,在存在与环境耦合所诱导的耗散过程的情况下,MBL在多大程度上仍然存在尚不清楚。在此,我们研究了一个典型的MBL系统——一个受淬火无序影响的相互作用费米子链——在存在退相的情况下的加热和遍历性。我们发现,尽管系统最终会被驱动到无限温度状态,但由冯·诺依曼熵监测的加热过程可以对数方式缓慢进行,这意味着弛豫的时间尺度呈指数级增大。这种对初始条件的缓慢记忆丧失使得非遍历性的特征在很长但短暂的时间范围内可见。我们指出了一种利用光学晶格中捕获的冷原子气体对所考虑设置进行潜在可控实现的方法。

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