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拓扑量子相的动力学分类

Dynamical classification of topological quantum phases.

作者信息

Zhang Lin, Zhang Long, Niu Sen, Liu Xiong-Jun

机构信息

International Center for Quantum Materials, School of Physics, Peking University, Beijing 100871, China; Collaborative Innovation Center of Quantum Matter, Beijing 100871, China.

International Center for Quantum Materials, School of Physics, Peking University, Beijing 100871, China; Collaborative Innovation Center of Quantum Matter, Beijing 100871, China; Institute for Quantum Science and Engineering and Department of Physics, Southern University of Science and Technology, Shenzhen 518055, China.

出版信息

Sci Bull (Beijing). 2018 Nov 15;63(21):1385-1391. doi: 10.1016/j.scib.2018.09.018. Epub 2018 Sep 29.

Abstract

Topological phase of matter is now a mainstream of research in condensed matter physics, of which the classification, synthesis, and detection of topological states have brought excitements over the recent decade while remain incomplete with ongoing challenges in both theory and experiment. Here we propose to establish a universal non-equilibrium characterization of the equilibrium topological quantum phases classified by integers, and further propose the high-precision dynamical schemes to detect such states. The framework of the dynamical classification theory consists of basic theorems. First, we uncover that classifying a d-dimensional (dD) gapped topological phase of generic multibands can reduce to a (d-1)D invariant defined on so-called band inversion surfaces (BISs), rendering a bulk-surface duality which simplifies the topological characterization. Further, we show in quenching across phase boundary the (pseudo) spin dynamics to exhibit unique topological patterns on BISs, which are attributed to the post-quench bulk topology and manifest a dynamical bulk-surface correspondence. For this the topological phase is classified by a dynamical topological invariant measured from an emergent dynamical spin-texture field on the BISs. Applications to quenching experiments on feasible models are proposed and studied, demonstrating the new experimental strategies to detect topological phases with high feasibility. This work opens a broad new direction to classify and detect topological phases by non-equilibrium quantum dynamics.

摘要

物质的拓扑相如今是凝聚态物理研究的一个主流领域,其中拓扑态的分类、合成及探测在近十年带来了诸多激动人心的成果,但在理论和实验方面仍面临挑战,尚未完善。在此,我们提议建立一种对由整数分类的平衡拓扑量子相的通用非平衡表征,并进一步提出高精度动力学方案来探测此类状态。动力学分类理论框架由基本定理构成。首先,我们发现对一般多能带的d维(dD)带隙拓扑相进行分类可简化为在所谓的能带反转面(BISs)上定义的(d - 1)维不变量,从而形成一种体 - 面对偶性,简化了拓扑表征。此外,我们表明在跨越相边界的猝灭过程中,(赝)自旋动力学在BISs上展现出独特的拓扑模式,这归因于猝灭后的体拓扑,并体现了一种动力学体 - 面对应关系。为此,拓扑相由从BISs上一个涌现的动力学自旋纹理场测量得到的动力学拓扑不变量进行分类。我们提出并研究了将其应用于可行模型的猝灭实验,展示了探测拓扑相的新实验策略具有高度可行性。这项工作为通过非平衡量子动力学对拓扑相进行分类和探测开辟了一个广阔的新方向。

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