Zhao, W., Yang, M., Xu, R., Du, X., Li, Y., Zhai, K., Peng, C., Pei, D., Gao, H., Li, Y., Xu, L., Han, J., Huang, Y., Liu, Z., Yao, Y., Zhuang, J., Du, Y., Zhou, J., Chen, Y., & Yang, L. (2023). Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4. Nature Communications, 14(1), Article 8089. https://doi.org/10.1038/s41467-023-43882-z
Zhao, Wenxuan ; Yang, Ming ; Xu, Runzhe et al. / Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4. In: Nature Communications. 2023 ; Vol. 14, No. 1.
@article{c3232ce89d1f4bd98a48727e132dc896,
title = "Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4",
abstract = "The notion of topological insulators (TIs), characterized by an insulating bulk and conducting topological surface states, can be extended to higher-order topological insulators (HOTIs) hosting gapless modes localized at the boundaries of two or more dimensions lower than the insulating bulk. In this work, by performing high-resolution angle-resolved photoemission spectroscopy (ARPES) measurements with submicron spatial and spin resolution, we systematically investigate the electronic structure and spin texture of quasi-one-dimensional (1D) HOTI candidate Bi4Br4. In contrast to the bulk-state-dominant spectra on the (001) surface, we observe gapped surface states on the (100) surface, whose dispersion and spin-polarization agree well with our ab-initio calculations. Moreover, we reveal in-gap states connecting the surface valence and conduction bands, which is a signature of the hinge states inside the (100) surface gap. Our findings provide compelling evidence for the HOTI phase of Bi4Br4. The identification of the higher-order topological phase promises applications based on 1D spin-momentum locked current in electronic and spintronic devices.",
author = "Wenxuan Zhao and Ming Yang and Runzhe Xu and Xian Du and Yidian Li and Kaiyi Zhai and Cheng Peng and Ding Pei and Han Gao and Yiwei Li and Lixuan Xu and Junfeng Han and Yuan Huang and Zhongkai Liu and Yugui Yao and Jincheng Zhuang and Yi Du and Jinjian Zhou and Yulin Chen and Lexian Yang",
note = "Publisher Copyright: {\textcopyright} 2023, The Author(s).",
year = "2023",
month = dec,
doi = "10.1038/s41467-023-43882-z",
language = "English",
volume = "14",
journal = "Nature Communications",
issn = "2041-1723",
publisher = "Nature Publishing Group",
number = "1",
}
Zhao, W, Yang, M, Xu, R, Du, X, Li, Y, Zhai, K, Peng, C, Pei, D, Gao, H, Li, Y, Xu, L, Han, J, Huang, Y, Liu, Z, Yao, Y, Zhuang, J, Du, Y, Zhou, J, Chen, Y & Yang, L 2023, 'Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4', Nature Communications, vol. 14, no. 1, 8089. https://doi.org/10.1038/s41467-023-43882-z
Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4. / Zhao, Wenxuan; Yang, Ming; Xu, Runzhe et al.
In:
Nature Communications, Vol. 14, No. 1, 8089, 12.2023.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4
AU - Zhao, Wenxuan
AU - Yang, Ming
AU - Xu, Runzhe
AU - Du, Xian
AU - Li, Yidian
AU - Zhai, Kaiyi
AU - Peng, Cheng
AU - Pei, Ding
AU - Gao, Han
AU - Li, Yiwei
AU - Xu, Lixuan
AU - Han, Junfeng
AU - Huang, Yuan
AU - Liu, Zhongkai
AU - Yao, Yugui
AU - Zhuang, Jincheng
AU - Du, Yi
AU - Zhou, Jinjian
AU - Chen, Yulin
AU - Yang, Lexian
N1 - Publisher Copyright:
© 2023, The Author(s).
PY - 2023/12
Y1 - 2023/12
N2 - The notion of topological insulators (TIs), characterized by an insulating bulk and conducting topological surface states, can be extended to higher-order topological insulators (HOTIs) hosting gapless modes localized at the boundaries of two or more dimensions lower than the insulating bulk. In this work, by performing high-resolution angle-resolved photoemission spectroscopy (ARPES) measurements with submicron spatial and spin resolution, we systematically investigate the electronic structure and spin texture of quasi-one-dimensional (1D) HOTI candidate Bi4Br4. In contrast to the bulk-state-dominant spectra on the (001) surface, we observe gapped surface states on the (100) surface, whose dispersion and spin-polarization agree well with our ab-initio calculations. Moreover, we reveal in-gap states connecting the surface valence and conduction bands, which is a signature of the hinge states inside the (100) surface gap. Our findings provide compelling evidence for the HOTI phase of Bi4Br4. The identification of the higher-order topological phase promises applications based on 1D spin-momentum locked current in electronic and spintronic devices.
AB - The notion of topological insulators (TIs), characterized by an insulating bulk and conducting topological surface states, can be extended to higher-order topological insulators (HOTIs) hosting gapless modes localized at the boundaries of two or more dimensions lower than the insulating bulk. In this work, by performing high-resolution angle-resolved photoemission spectroscopy (ARPES) measurements with submicron spatial and spin resolution, we systematically investigate the electronic structure and spin texture of quasi-one-dimensional (1D) HOTI candidate Bi4Br4. In contrast to the bulk-state-dominant spectra on the (001) surface, we observe gapped surface states on the (100) surface, whose dispersion and spin-polarization agree well with our ab-initio calculations. Moreover, we reveal in-gap states connecting the surface valence and conduction bands, which is a signature of the hinge states inside the (100) surface gap. Our findings provide compelling evidence for the HOTI phase of Bi4Br4. The identification of the higher-order topological phase promises applications based on 1D spin-momentum locked current in electronic and spintronic devices.
UR - http://www.scopus.com/inward/record.url?scp=85178659995&partnerID=8YFLogxK
U2 - 10.1038/s41467-023-43882-z
DO - 10.1038/s41467-023-43882-z
M3 - Article
C2 - 38062024
AN - SCOPUS:85178659995
SN - 2041-1723
VL - 14
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 8089
ER -
Zhao W, Yang M, Xu R, Du X, Li Y, Zhai K et al. Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4. Nature Communications. 2023 Dec;14(1):8089. doi: 10.1038/s41467-023-43882-z