1. High-temperature quantum anomalous Hall regime in a MnBi2Te4/Bi2Te3 superlattice
- Author
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Alexandru B. Georgescu, Kamil Sobczak, Łukasz Pluciński, Jolanta Borysiuk, Joanna Sitnicka, Agnieszka Wołoś, Lia Krusin-Elbaum, Tristan Heider, Haiming Deng, Zhiyi Chen, Jennifer Cano, Kyungwha Park, I. V. Fedorchenko, Marcin Konczykowski, City College of New York [CUNY] (CCNY), City University of New York [New York] (CUNY), Laboratoire des Solides Irradiés (LSI), Commissariat à l'énergie atomique et aux énergies alternatives (CEA)-École polytechnique (X)-Centre National de la Recherche Scientifique (CNRS), University of Warsaw (UW), Khristianovich Institute of Theoretical and Applied Mechanics SB RAS, and Novosibirsk State University of Architecture and Civil Engineering (Sibstrin)
- Subjects
Physics ,Condensed matter physics ,Superlattice ,Fermi level ,General Physics and Astronomy ,Quantum anomalous Hall effect ,Fermi energy ,Condensed Matter::Mesoscopic Systems and Quantum Hall Effect ,01 natural sciences ,010305 fluids & plasmas ,Magnetic field ,[PHYS.COND.CM-S]Physics [physics]/Condensed Matter [cond-mat]/Superconductivity [cond-mat.supr-con] ,Quantization (physics) ,symbols.namesake ,Ferromagnetism ,Topological insulator ,0103 physical sciences ,symbols ,ddc:530 ,010306 general physics - Abstract
The quantum anomalous Hall effect1,2 is a fundamental transport response of a topological insulator in zero magnetic field. Its physical origin is a result of an intrinsically inverted electronic band structure and ferromagnetism3, and its most important manifestation is the dissipationless flow of chiral charge currents at the edges of the system4, a property that has the potential to transform future quantum electronics5,6. Here, we report a Berry-curvature-driven4,7 anomalous Hall regime at temperatures of several Kelvin in the magnetic topological bulk crystals in which Mn ions self-organize into a period-ordered MnBi2Te4/Bi2Te3 superlattice. Robust ferromagnetism of the MnBi2Te4 monolayers opens a surface gap8–10, and when the Fermi level is tuned to be within this gap, the anomalous Hall conductance reaches an e2/h quantization plateau, which is a clear indication of chiral transport through the edge states. The quantization in this regime is not obstructed by the bulk conduction channels and therefore should be present in a broad family of topological magnets. A three-dimensional topological magnetic superlattice structure exhibits the quantum anomalous Hall effect when the Fermi energy is tuned into the correct energy window.
- Published
- 2020