Title | Dirac nodal lines and nodal loops in the topological kagome superconductor CsV3Sb5 |
Author | Hao,Zhanyang1,2 ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() |
Corresponding Author | Wang,Jianfeng; Mei,Jia Wei; Chen,Chaoyu |
Joint first author | Hao,Zhanyang; Cai,Yongqing; Liu,Yixuan; Wang,Yuan |
Publication Years | 2022-08-15
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DOI | |
Source Title | |
ISSN | 2469-9950
|
EISSN | 2469-9969
|
Volume | 106Issue:8 |
Abstract | The intertwining of charge order, superconductivity, and band topology has promoted the AV3Sb5 (A=K, Rb, Cs) family of materials to the center of attention in condensed matter physics. Underlying those mysterious macroscopic properties such as giant anomalous Hall conductivity (AHC) and chiral charge density wave is their nontrivial band topology. While there have been numerous experimental and theoretical works investigating the nontrivial band structure and especially the van Hove singularities, the exact topological phase of this family remains to be clarified. In this work, we identify CsV3Sb5 as a Dirac nodal line semimetal based on the observation of multiple Dirac nodal lines and loops close to the Fermi level. Combining photoemission spectroscopy and density functional theory, we identify two groups of Dirac nodal lines along the kz direction and one group of Dirac nodal loops in the A-H-L plane. These nodal loops are located at the Fermi level within the instrumental resolution limit. Importantly, our first-principles analyses indicate that these nodal loops may be a crucial source of the mysterious giant AHC observed. Our results not only provide a clear picture to categorize the band structure topology of this family of materials, but also suggest the dominant role of topological nodal loops in shaping their transport behavior. |
URL | [Source Record] |
Indexed By | |
Language | English
|
Important Publications | NI Journal Papers
|
SUSTech Authorship | First
; 共同第一
; Corresponding
|
Funding Project | National Natural Science Foundation of China (NSFC)["12074163","12004030"]
; Guangdong Basic and Applied Basic Research Foundation["2022B1515020046","2021B1515130007","2020B1515120100"]
; Guangdong Innovative and Entrepreneurial Research Team Program["2017ZT07C062","2019ZT08C044"]
; Shenzhen Science and Technology Program[KQTD20190929173815000]
; University Innovative Team in Guangdong Province[2020KCXTD001]
; Shenzhen Key Laboratory of Advanced Quantum Functional Materials and Devices[ZDSYS20190902092905285]
; China Postdoctoral Science Foundation["2020M682780","2022M711495"]
|
WOS Research Area | Materials Science
; Physics
|
WOS Subject | Materials Science, Multidisciplinary
; Physics, Applied
; Physics, Condensed Matter
|
WOS Accession No | WOS:000888609100004
|
Publisher | |
EI Accession Number | 20223412623284
|
EI Keywords | Antimony Compounds
; Charge Density
; Charge Density Waves
; Density Functional Theory
; Fermi Level
; Photoelectron Spectroscopy
; Topology
|
ESI Classification Code | Electricity: Basic Concepts And Phenomena:701.1
; Combinatorial Mathematics, Includes Graph Theory, Set Theory:921.4
; Probability Theory:922.1
; Atomic And Molecular Physics:931.3
; Quantum Theory
; Quantum Mechanics:931.4
; Solid State Physics:933
|
ESI Research Field | PHYSICS
|
Scopus EID | 2-s2.0-85136318498
|
Data Source | Scopus
|
Citation statistics |
Cited Times [WOS]:1
|
Document Type | Journal Article |
Identifier | http://kc.sustech.edu.cn/handle/2SGJ60CL/395127 |
Department | Department of Physics 量子科学与工程研究院 |
Affiliation | 1.Shenzhen Institute for Quantum Science and Engineering,Department of Physics,Southern University of Science and Technology,Shenzhen,518055,China 2.International Quantum Academy,Shenzhen,518048,China 3.Beijing Computational Science Research Center,Beijing,100193,China 4.State Key Laboratory of Functional Materials for Informatics,Center for Excellence in Superconducting Electronics,Shanghai Institute of Microsystem and Information Technology,Chinese Academy of Sciences,Shanghai,200050,China 5.National Synchrotron Radiation Laboratory,University of Science and Technology of China,Hefei,230029,China 6.School of Physics,Beihang University,Beijing,100191,China 7.Shenzhen Key Laboratory of Advanced Quantum Functional Materials and Devices,Southern University of Science and Technology,Shenzhen,518055,China |
First Author Affilication | Department of Physics; Institute for Quantum Science and Engineering |
Corresponding Author Affilication | Department of Physics; Institute for Quantum Science and Engineering; Southern University of Science and Technology |
First Author's First Affilication | Department of Physics; Institute for Quantum Science and Engineering |
Recommended Citation GB/T 7714 |
Hao,Zhanyang,Cai,Yongqing,Liu,Yixuan,et al. Dirac nodal lines and nodal loops in the topological kagome superconductor CsV3Sb5[J]. Physical Review B,2022,106(8).
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APA |
Hao,Zhanyang.,Cai,Yongqing.,Liu,Yixuan.,Wang,Yuan.,Sui,Xuelei.,...&Chen,Chaoyu.(2022).Dirac nodal lines and nodal loops in the topological kagome superconductor CsV3Sb5.Physical Review B,106(8).
|
MLA |
Hao,Zhanyang,et al."Dirac nodal lines and nodal loops in the topological kagome superconductor CsV3Sb5".Physical Review B 106.8(2022).
|
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