论文标题
基于拓扑绝缘体的三末端连接的平面磁场驱动对称性破坏
In-plane magnetic field-driven symmetry breaking in topological insulator-based three-terminal junctions
论文作者
论文摘要
三维拓扑绝缘子纳米纤维及其独特的磁导体特性的拓扑表面状态对于拓扑式应用和拓扑量子计算具有希望。基于纳米替伯的电路的关键构件是三端连接。虽然平面边界上拓扑表面状态的转运不受平面磁场的直接影响,但当表面状态局限于纳米替伯恩几何形状的边界时,轨道效应不能忽略。在这里,我们报告了此类三末端连接的磁转移特性。我们观察到电流对平面磁场的依赖性,其表面状态电流的明显转向模式朝着优先的输出端子,用于不同的磁场方向。我们证明了这种转向效应源于轨道效应,将纳米替比相对侧不同腿的相位腿的相位表面状态捕获,并打破了透射横穿连接的左右对称性。据报道的磁转运性能表明,平面磁场不仅相关,而且对于在三维拓扑绝缘子基于纳米孔的连接和电路中对传输的表征和操纵也非常有用,充当拓扑电流开关。
Topological surface states of three-dimensional topological insulator nanoribbons and their distinct magnetoconductance properties are promising for topoelectronic applications and topological quantum computation. A crucial building block for nanoribbon-based circuits are three-terminal junctions. While the transport of topological surface states on a planar boundary is not directly affected by an in-plane magnetic field, the orbital effect cannot be neglected when the surface states are confined to the boundary of a nanoribbon geometry. Here, we report on the magnetotransport properties of such three-terminal junctions. We observe a dependence of the current on the in-plane magnetic field, with a distinct steering pattern of the surface state current towards a preferred output terminal for different magnetic field orientations. We demonstrate that this steering effect originates from the orbital effect, trapping the phase-coherent surface states in the different legs of the junction on opposite sides of the nanoribbon and breaking the left-right symmetry of the transmission across the junction. The reported magnetotransport properties demonstrate that an in-plane magnetic field is not only relevant but also very useful for the characterization and manipulation of transport in three-dimensional topological insulator nanoribbon-based junctions and circuits, acting as a topoelectric current switch.