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光学调控自旋 Hall 绝缘体的拓扑性质。

Optically engineering the topological properties of a spin Hall insulator.

机构信息

Department of Physics, Budapest University of Technology and Economics, Budafoki út 8, 1111 Budapest, Hungary.

出版信息

Phys Rev Lett. 2012 Feb 3;108(5):056602. doi: 10.1103/PhysRevLett.108.056602. Epub 2012 Jan 31.

Abstract

Time-periodic perturbations can be used to engineer topological properties of matter by altering the Floquet band structure. This is demonstrated for the helical edge state of a spin Hall insulator in the presence of monochromatic circularly polarized light. The inherent spin structure of the edge state is influenced by the Zeeman coupling and not by the orbital effect. The photocurrent (and the magnetization along the edge) develops a finite, helicity-dependent expectation value and turns from dissipationless to dissipative with increasing radiation frequency, signalling a change in the topological properties. The connection with Thouless' charge pumping and nonequilibrium zitterbewegung is discussed, together with possible experiments.

摘要

周期性时变可以通过改变弗洛凯能带结构来工程物质的拓扑性质。本文通过对存在单色圆偏振光时的自旋霍尔绝缘体的螺旋边缘态进行了演示。边缘态的固有自旋结构受塞曼耦合影响,而不受轨道效应影响。光电流(以及沿边缘的磁化强度)会产生有限的、与螺旋度相关的期望值,并随着辐射频率的增加从无耗散变为耗散,表明拓扑性质发生了变化。讨论了与图勒电荷泵浦和非平衡之颤运动的联系,以及可能的实验。

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