| Literature DB >> 25302915 |
Xufeng Kou1, Shih-Ting Guo2, Yabin Fan1, Lei Pan1, Murong Lang1, Ying Jiang3, Qiming Shao1, Tianxiao Nie1, Koichi Murata1, Jianshi Tang1, Yong Wang3, Liang He1, Ting-Kuo Lee2, Wei-Li Lee2, Kang L Wang1.
Abstract
We investigate the quantum anomalous Hall effect (QAHE) and related chiral transport in the millimeter-size (Cr(0.12)Bi(0.26)Sb(0.62))₂Te₃ films. With high sample quality and robust magnetism at low temperatures, the quantized Hall conductance of e²/h is found to persist even when the film thickness is beyond the two-dimensional (2D) hybridization limit. Meanwhile, the Chern insulator-featured chiral edge conduction is manifested by the nonlocal transport measurements. In contrast to the 2D hybridized thin film, an additional weakly field-dependent longitudinal resistance is observed in the ten-quintuple-layer film, suggesting the influence of the film thickness on the dissipative edge channel in the QAHE regime. The extension of the QAHE into the three-dimensional thickness region addresses the universality of this quantum transport phenomenon and motivates the exploration of new QAHE phases with tunable Chern numbers. In addition, the observation of scale-invariant dissipationless chiral propagation on a macroscopic scale makes a major stride towards ideal low-power interconnect applications.Entities:
Year: 2014 PMID: 25302915 DOI: 10.1103/PhysRevLett.113.137201
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161