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Field-Tunable One-Sided Higher-Order Topological Hinge States in Dirac Semimetals

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Liu,  Tianyu
Max Planck Institute for the Physics of Complex Systems, Max Planck Society;

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Citation

Chen, R., Liu, T., Wang, C. M., Lu, H.-Z., & Xie, X. C. (2021). Field-Tunable One-Sided Higher-Order Topological Hinge States in Dirac Semimetals. Physical Review Letters, 127(6): 066801. doi:10.1103/PhysRevLett.127.066801.


Cite as: https://hdl.handle.net/21.11116/0000-0009-4655-9
Abstract
Recently, higher-order topological matter and 3D quantum Hall effects have attracted a great amount of attention. The Fermi-arc mechanism of the 3D quantum Hall effect proposed to exist in Weyl semimetals is characterized by the one-sided hinge states, which do not exist in all the previous quantum Hall systems, and more importantly, pose a realistic example of the higher-order topological matter. The experimental effort so far is in the Dirac semimetal Cd3As2, where, however, time-reversal symmetry leads to hinge states on both sides of the top and bottom surfaces, instead of the aspired one-sided hinge states. We propose that under a tilted magnetic field, the hinge states in Cd3As2-like Dirac semimetals can be one sided, highly tunable by field direction and Fermi energy, and robust against weak disorder. Furthermore, we propose a scanning tunneling Hall measurement to detect the one-sided hinge states. Our results will be insightful for exploring not only the quantum Hall effects beyond two dimensions, but also other higher-order topological insulators in the future.