论文标题

边缘电流手性在量子异常霍尔绝缘子中的电气开关

Electrical Switching of the Edge Current Chirality in Quantum Anomalous Hall Insulators

论文作者

Yuan, Wei, Zhou, Ling-Jie, Yang, Kaijie, Zhao, Yi-Fan, Zhang, Ruoxi, Yan, Zijie, Zhuo, Deyi, Mei, Ruobing, Chan, Moses H. W., Kayyalha, Morteza, Liu, Chao-Xing, Chang, Cui-Zu

论文摘要

量子异常的大厅(QAH)绝缘子是物质的拓扑状态,其中内部是绝缘但沿样品边缘的电流流动,以顺时针(右手)或逆时针方向(左手)或逆时针方向(左手)方向由自发性磁化方向指示。这种手性边缘电流(CEC)消除了任何反向散射,从而产生了量化的大厅电阻和零纵向电阻。在这项工作中,我们制造了介观QAH三明治(即磁性拓扑绝缘子(TI)/Ti/Magnetic Ti)霍尔栏设备,并通过施加电流脉冲和适当控制的门电压来通过旋转轨道扭矩(SOT)成功切换QAH绝缘子中的CEC手学。 SOT切换之前和之后,通过四端测量和三端测量证明了具有相反CEC手续的良好QAH状态。我们的理论计算表明,启用磁化切换的SOT可以由QAH绝缘子中的散装和表面载体生成,这与实验观察结果非常吻合。 QAH绝缘子中CEC手学的当前脉冲引起的切换不仅会促进我们在磁性和拓扑状态之间相互作用中的知识,而且还可以加快对QAH状态的轻松和瞬时操纵,以验证能源有效的电子和自旋设备以及量子信息应用。

A quantum anomalous Hall (QAH) insulator is a topological state of matter, in which the interior is insulating but electrical current flows along the edges of the sample, in either clockwise (right-handed) or counter-clockwise (left-handed) direction dictated by the spontaneous magnetization orientation. Such chiral edge current (CEC) eliminates any backscattering, giving rise to quantized Hall resistance and zero longitudinal resistance. In this work, we fabricate mesoscopic QAH sandwich (i.e. magnetic topological insulator (TI)/TI/magnetic TI) Hall bar devices and succeed in switching the CEC chirality in QAH insulators through spin-orbit torque (SOT) by applying a current pulse and suitably controlled gate voltage. The well-quantized QAH states with opposite CEC chiralities are demonstrated through four- and three-terminal measurements before and after SOT switching. Our theoretical calculations show that the SOT that enables the magnetization switching can be generated by both bulk and surface carriers in QAH insulators, in good agreement with experimental observations. Current pulse-induced switching of the CEC chirality in QAH insulators will not only advance our knowledge in the interplay between magnetism and topological states but also expedite easy and instantaneous manipulation of the QAH state in proof-of-concept energy-efficient electronic and spintronic devices as well as quantum information applications.

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