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无无序体系中的 Stark 多体局域化观测。

Observation of Stark many-body localization without disorder.

机构信息

Joint Quantum Institute and Joint Center for Quantum Information and Computer Science, University of Maryland and NIST, College Park, MD, USA.

Department of Physics and Astronomy, Rice University, Houston, TX, USA.

出版信息

Nature. 2021 Nov;599(7885):393-398. doi: 10.1038/s41586-021-03988-0. Epub 2021 Nov 17.

Abstract

Thermalization is a ubiquitous process of statistical physics, in which a physical system reaches an equilibrium state that is defined by a few global properties such as temperature. Even in isolated quantum many-body systems, limited to reversible dynamics, thermalization typically prevails. However, in these systems, there is another possibility: many-body localization (MBL) can result in preservation of a non-thermal state. While disorder has long been considered an essential ingredient for this phenomenon, recent theoretical work has suggested that a quantum many-body system with a spatially increasing field-but no disorder-can also exhibit MBL, resulting in 'Stark MBL'. Here we realize Stark MBL in a trapped-ion quantum simulator and demonstrate its key properties: halting of thermalization and slow propagation of correlations. Tailoring the interactions between ionic spins in an effective field gradient, we directly observe their microscopic equilibration for a variety of initial states, and we apply single-site control to measure correlations between separate regions of the spin chain. Furthermore, by engineering a varying gradient, we create a disorder-free system with coexisting long-lived thermalized and non-thermal regions. The results demonstrate the unexpected generality of MBL, with implications about the fundamental requirements for thermalization and with potential uses in engineering long-lived non-equilibrium quantum matter.

摘要

热化是统计物理中一种普遍存在的过程,其中物理系统达到由几个全局性质(如温度)定义的平衡状态。即使在受限于可逆动力学的孤立量子多体系统中,热化通常也占主导地位。然而,在这些系统中,还有另一种可能性:多体局域化(MBL)可以导致非热化状态的保持。虽然无序长期以来一直被认为是这种现象的必要条件,但最近的理论工作表明,具有空间增加场但没有无序的量子多体系统也可以表现出 MBL,从而导致“斯塔克 MBL”。在这里,我们在囚禁离子量子模拟器中实现了斯塔克 MBL,并展示了其关键特性:热化的停止和相关性的缓慢传播。通过在有效场梯度中调整离子自旋之间的相互作用,我们直接观察到它们在各种初始状态下的微观平衡,并应用单点控制来测量自旋链中不同区域之间的相关性。此外,通过工程化变化的梯度,我们创建了一个无无序的系统,其中共存着长寿命热化和非热化区域。这些结果证明了 MBL 的出人意料的普遍性,对热化的基本要求有影响,并可能在工程长寿命非平衡量子物质方面有应用。

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