拓扑绝缘体
拓扑序
凝聚态物理
量子自旋霍尔效应
量子霍尔效应
拓扑(电路)
物理
对称保护拓扑序
拓扑简并
无缝回放
量子
量子力学
磁场
数学
组合数学
作者
Nana Shumiya,Md Shafayat Hossain,Jia‐Xin Yin,Zhiwei Wang,Maksim Litskevich,Chiho Yoon,Yongkai Li,Ying Yang,Yu‐Xiao Jiang,Guangming Cheng,Yen-Chuan Lin,Qi Zhang,Zi‐Jia Cheng,Tyler A. Cochran,Daniel Multer,Xiàn Yáng,Brian Casas,Tay-Rong Chang,Titus Neupert,Zhujun Yuan
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2022-07-14
卷期号:21 (10): 1111-1115
被引量:86
标识
DOI:10.1038/s41563-022-01304-3
摘要
Room-temperature realization of macroscopic quantum phases is one of the major pursuits in fundamental physics1,2. The quantum spin Hall phase3-6 is a topological quantum phase that features a two-dimensional insulating bulk and a helical edge state. Here we use vector magnetic field and variable temperature based scanning tunnelling microscopy to provide micro-spectroscopic evidence for a room-temperature quantum spin Hall edge state on the surface of the higher-order topological insulator Bi4Br4. We find that the atomically resolved lattice exhibits a large insulating gap of over 200 meV, and an atomically sharp monolayer step edge hosts an in-gap gapless state, suggesting topological bulk-boundary correspondence. An external magnetic field can gap the edge state, consistent with the time-reversal symmetry protection inherent in the underlying band topology. We further identify the geometrical hybridization of such edge states, which not only supports the Z2 topology of the quantum spin Hall state but also visualizes the building blocks of the higher-order topological insulator phase. Our results further encourage the exploration of high-temperature transport quantization of the putative topological phase reported here.
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