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Nanoscale imaging of equilibrium quantum Hall edge currents and of the magnetic monopole response in graphene

机译:纳米级成像平衡量子霍尔边缘电流和石墨烯磁单极反应

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摘要

Although the recently predicted topological magnetoelectric effect(1) and the response to an electric charge that mimics an induced mirror magnetic monopole(2) are fundamental attributes of topological states of matter with broken time-reversal symmetry, so far they have not been directly observed in experiments. Using a SQUID-on-tip(3), acting simultaneously as a tunable scanning electric charge and as an ultrasensitive nanoscale magnetometer, we induce and directly image the microscopic currents generating the magnetic monopole response in a graphene quantum Hall electron system. We find a rich and complex nonlinear behaviour, governed by the coexistence of topological and non-topological equilibrium currents, that is not captured by the monopole models(2). Furthermore, by imaging the equilibrium currents of individual quantum Hall edge states, we reveal that the edge states, which are commonly assumed to carry only a chiral downstream current, in fact carry a pair of counterpropagating currents(4), in which the topological downstream current in the incompressible region is counterbalanced by a non-topological upstream current flowing in the adjacent compressible region. The intricate patterns of the counterpropagating equilibrium-state orbital currents provide insights into the microscopic origins of the topological and non-topological charge and energy flow in quantum Hall systems.
机译:尽管最近预测的拓扑磁电效应(1)和对模仿诱导镜磁单极(2)的电荷的响应是物质拓扑状态的基本属性,但到目前为止他们尚未直接观察到在实验中。使用鱿鱼尖端(3),同时用作可调扫描电荷和超敏感的纳米级磁力计,我们诱导并直接通过在石墨烯量子霍尔电子系统中产生产生磁单极响应的微观电流。我们发现富含拓扑和非拓扑均衡电流的共存的丰富和复杂的非线性行为,这些行为不受单极模型(2)捕获的。此外,通过对各个量子霍尔边缘状态的平衡电流进行成像,我们揭示了边缘状态,其通常假设仅携带手性下游电流,实际上携带一对逆产电流(4),其中拓扑下游不可压缩区域中的电流通过在相邻可压缩区域中流动的非拓扑上游电流进行平衡。反向衰减平衡状态轨道电流的复杂模式提供了对量子霍尔系统中拓扑和非拓扑电荷和能量流动的显微镜起源的见解。

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