| Literature DB >> 33710884 |
Dmitry Ovchinnikov1, Xiong Huang2,3, Zhong Lin1, Zaiyao Fei1, Jiaqi Cai1, Tiancheng Song1, Minhao He1, Qianni Jiang1, Chong Wang4, Hao Li5, Yayu Wang6, Yang Wu7, Di Xiao4, Jiun-Haw Chu1, Jiaqiang Yan8,9, Cui-Zu Chang10, Yong-Tao Cui2, Xiaodong Xu1,11.
Abstract
MnBi2Te4, a van der Waals magnet, is an emergent platform for exploring Chern insulator physics. Its layered antiferromagnetic order was predicted to enable even-odd layer number dependent topological states. Furthermore, it becomes a Chern insulator when all spins are aligned by an applied magnetic field. However, the evolution of the bulk electronic structure as the magnetic state is continuously tuned and its dependence on layer number remains unexplored. Here, employing multimodal probes, we establish one-to-one correspondence between bulk electronic structure, magnetic state, topological order, and layer thickness in atomically thin MnBi2Te4 devices. As the magnetic state is tuned through the canted magnetic phase, we observe a band crossing, i.e., the closing and reopening of the bulk band gap, corresponding to the concurrent topological phase transition in both even- and odd-layer-number devices. Our findings shed new light on the interplay between band topology and magnetic order in this newly discovered topological magnet.Keywords: Chern insulator; band-crossing; chiral edge states; topological magnets
Year: 2021 PMID: 33710884 DOI: 10.1021/acs.nanolett.0c05117
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189