论文标题

在磁性绝缘体多层异质结构中创建用于量化运输的手性界面通道

Creation of Chiral Interface Channels for Quantized Transport in Magnetic Topological Insulator Multilayer Heterostructures

论文作者

Zhao, Yi-Fan, Zhang, Ruoxi, Cai, Jiaqi, Zhuo, Deyi, Zhou, Ling-Jie, Yan, Zi-Jie, Chan, Moses H. W., Xu, Xiaodong, Chang, Cui-Zu

论文摘要

一维(1D)拓扑保护状态通常在具有不同拓扑不变的二维(2D)材料之间形成。因此,可以在两个具有不同Chern号码的量子异常的绝缘子(QAH)绝缘子的边界上创建一维手性界面通道(CICS)。这样的QAH连接可以用作零磁场的手性边缘电流分配器,但其实现仍然具有挑战性。在这里,通过采用原位机械掩模,我们使用分子束外延(MBE)合成QAH绝缘子交界处,其中两个具有不同Chern数量的QAH绝缘子沿1D连接连接。对于C = 1和C = -1 QAH绝缘子之间的连接,我们观察到量化的传输,并在零磁场上沿着磁性域壁沿磁性域壁传播两个平行的CIC的外观。此外,由于可以通过更改磁性Ti/Ti Bilayer周期来调节磁性拓扑绝缘子(TI)/Ti多层中的Chern数量,因此可以通过在样品的两个侧面上种植不同时期的磁性TI/TI来实现两个任意Chern数量的QAH绝缘子之间的连接。对于C = 1和C = 2 QAH绝缘子之间的连接,我们的量化传输表明,一个CIC出现在接口处。我们的工作为开发基于QAH绝缘体的电子和自旋设备,拓扑性手性网络以及拓扑量子计算的基础奠定了基础。

One-dimensional (1D) topologically protected states are usually formed at the interface between two-dimensional (2D) materials with different topological invariants. Therefore, 1D chiral interface channels (CICs) can be created at the boundary of two quantum anomalous Hall (QAH) insulators with different Chern numbers. Such a QAH junction can function as a chiral edge current distributer at zero magnetic field, but its realization remains challenging. Here, by employing an in-situ mechanical mask, we use molecular beam epitaxy (MBE) to synthesize QAH insulator junctions, in which two QAH insulators with different Chern numbers are connected along a 1D junction. For the junction between C = 1 and C = -1 QAH insulators, we observe quantized transport and demonstrate the appearance of the two parallel propagating CICs along the magnetic domain wall at zero magnetic field. Moreover, since the Chern number of the QAH insulators in magnetic topological insulator (TI)/TI multilayers can be tuned by altering magnetic TI/TI bilayer periods, the junction between two QAH insulators with arbitrary Chern numbers can be achieved by growing different periods of magnetic TI/TI on the two sides of the sample. For the junction between C = 1 and C = 2 QAH insulators, our quantized transport shows that a single CIC appears at the interface. Our work lays down the foundation for the development of QAH insulator-based electronic and spintronic devices, topological chiral networks, and topological quantum computations.

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