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Topological phenomena in quantum walks: elementary introduction to the physics of topological phases

机译:量子行走中的拓扑现象:拓扑阶段物理学的基本介绍

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Discrete quantum walks are dynamical protocols for controlling a single quantum particle. Despite of its simplicity, quantum walks display rich topological phenomena and provide one of the simplest systems to study and understand topological phases. In this article, we review the physics of discrete quantum walks in one and two dimensions in light of topological phenomena and provide elementary explanations of topological phases and their physical consequence, namely the existence of boundary states. We demonstrate that quantum walks are versatile systems that simulate many topological phases whose classifications are known for static Hamiltonians. Furthermore, topological phenomena appearing in quantum walks go beyond what has been known in static systems; there are phenomena unique to quantum walks, being an example of periodically driven systems, that do not exist in static systems. Thus the quantum walks not only provide a powerful tool as a quantum simulator for static topological phases but also give unique opportunity to study topological phenomena in driven systems.
机译:离散量子游走是用于控制单个量子粒子的动力学协议。尽管它很简单,但量子行走显示出丰富的拓扑现象,并提供了研究和理解拓扑阶段的最简单系统之一。在本文中,我们根据拓扑现象回顾了一维和二维离散量子行走的物理学,并对拓扑相及其物理后果(即边界状态的存在)进行了基本解释。我们证明了量子行走是通用的系统,可以模拟许多拓扑相,其分类以静态哈密顿量为已知。此外,量子走动中出现的拓扑现象超出了静态系统中已知的范围。有一些量子游走特有的现象,它是周期性驱动系统的一个例子,在静态系统中不存在。因此,量子行走不仅为静态拓扑阶段提供了一个强大的工具,作为量子模拟器,而且为研究驱动系统中的拓扑现象提供了独特的机会。

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