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Visualization of an axion insulating state at the transition between 2 chiral quantum anomalous Hall states.


ABSTRACT: Quantum-relativistic materials often host electronic phenomena with exotic spatial distributions. In particular, quantum anomalous Hall (QAH) insulators feature topological boundary currents whose chirality is determined by the magnetization orientation. However, understanding the microscopic nature of edge vs. bulk currents has remained a challenge due to the emergence of multidomain states at the phase transitions. Here we use microwave impedance microscopy (MIM) to directly image chiral edge currents and phase transitions in a magnetic topological insulator. Our images reveal a dramatic change in the edge state structure and an unexpected microwave response at the topological phase transition between the Chern number [Formula: see text] and [Formula: see text] states, consistent with the emergence of an insulating [Formula: see text] state. The magnetic transition width is independent of film thickness, but the transition pattern is distinct in differently initiated field sweeps. This behavior suggests that the [Formula: see text] state has 2 surface states with Hall conductivities of [Formula: see text] but with opposite signs.

SUBMITTER: Allen M 

PROVIDER: S-EPMC6642385 | biostudies-literature | 2019 Jul

REPOSITORIES: biostudies-literature

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Visualization of an axion insulating state at the transition between 2 chiral quantum anomalous Hall states.

Allen Monica M   Cui Yongtao Y   Yue Ma Eric E   Mogi Masataka M   Kawamura Minoru M   Fulga Ion Cosma IC   Goldhaber-Gordon David D   Tokura Yoshinori Y   Shen Zhi-Xun ZX  

Proceedings of the National Academy of Sciences of the United States of America 20190702 29


Quantum-relativistic materials often host electronic phenomena with exotic spatial distributions. In particular, quantum anomalous Hall (QAH) insulators feature topological boundary currents whose chirality is determined by the magnetization orientation. However, understanding the microscopic nature of edge vs. bulk currents has remained a challenge due to the emergence of multidomain states at the phase transitions. Here we use microwave impedance microscopy (MIM) to directly image chiral edge  ...[more]

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