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Polarization induced Z2 and Chern topological phases in a periodically driving field

机译:在周期性驱动场中极化诱导的Z2和Chern拓扑相

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摘要

Z2 and Chern topological phases such as newly discovered quantum spin Hall and original quantum Hall states hardly both co–exist in a single material due to their contradictory requirement on the time–reversal symmetry (TRS). We show that although the TRS is broken in systems with a periodically driving field, an effective TRS can still be defined provided the ac–field is linearly polarized or certain other conditions are satisfied. The controllable TRS provides us a route to manipulate contradictory phases by tuning the polarization. To demonstrate the idea, we consider a tight-binding model that is relevant to several monolayered materials as a benchmark system. Our calculation shows not only topological Z2 to Chern phase transition occurs but rich Chern phases are also observed. In addition, we also discussed the realization of our proposal in real materials, such as spin-orbit coupled graphene and crystal Bismuth. This opens the possibility of manipulating various topological phases in a single material and can be a promising approach to engineer new electronic states of matter.
机译:Z2和Chern拓扑阶段,例如新发现的量子自旋霍尔和原始量子霍尔状态,几乎都不能同时存在于一种材料中,这是因为它们对时间反转对称性(TRS)的要求相互矛盾。我们表明,尽管TRS在具有周期性驱动场的系统中被破坏,但只要交流场呈线性极化或满足某些其他条件,仍然可以定义有效的TRS。可控TRS为我们提供了通过调整极化来操纵矛盾相位的途径。为了证明这一点,我们将与几种单层材料相关的紧密绑定模型作为基准系统。我们的计算表明,不仅发生了从Z2到Chern的拓扑相变,而且还观察到了丰富的Chern相。此外,我们还讨论了在真实材料(如自旋轨道耦合石墨烯和晶体铋)中实现该建议的方法。这开辟了在单一材料中操纵各种拓扑阶段的可能性,并且可以成为一种工程化新的电子态的有前途的方法。

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