Type‐II Dirac Nodal Lines in a Double‐Kagome‐Layered Semimetal

Author:

Cai Yongqing1,Wang Jianfeng23,Wang Yuan1,Hao Zhanyang1,Liu Yixuan1,Zhou Liang1,Sui Xuelei3,Jiang Zhicheng4,Xu Shengjie2,Ge Han1,Ma Xiao‐Ming1,Zhang Chengcheng1,Shen Zecheng1,Yang Yichen4,Jiang Qi4,Liu Zhengtai4,Ye Mao4,Shen Dawei4,Liu Yi5,Cui Shengtao5,Wang Le1,Liu Cai1,Lin Junhao1,Huang Bing3,Wu Liusuo1,Zhuang Jincheng2,He Hongtao1,Zhang Wenqing1,Mei Jia‐Wei1,Chen Chaoyu1ORCID

Affiliation:

1. Shenzhen Institute for Quantum Science and Engineering (SIQSE) and Department of Physics Southern University of Science and Technology (SUSTech) Shenzhen 518055 China

2. School of Physics Beihang University Beijing 100191 China

3. Beijing Computational Science Research Center Beijing 100193 China

4. State Key Laboratory of Functional Materials for Informatics and 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 Anhui 230029 China

Abstract

AbstractLorentz‐violating type‐II Dirac nodal line semimetals (DNLSs), hosting curves of band degeneracy formed by two dispersion branches with the same sign of slope, represent a novel state of matter. While being studied extensively in theory, convincing experimental evidence of type‐II DNLSs remain elusive. Recently, vanadium‐based kagome materials have emerged as a fertile ground to study the interplay between lattice symmetry and band topology. This work studies the low‐energy band structure of double‐kagome‐layered CsV8Sb12 and identifies it as a scarce type‐II DNLS protected by mirror symmetry. This work observes multiple DNLs consisting of type‐II Dirac cones close to or almost at the Fermi level via angle‐resolved photoemission spectroscopy (ARPES), which provides an electronic explanation for the nonsaturating magnetoresistance effect as observed. First‐principles theory analyses show that spin‐orbit coupling only opens a small gap, resulting in effectively gapless ARPES spectra, yet generating large spin Berry curvature. These type‐II DNLs, together with the interaction between a low‐energy van Hove singularity and quasi‐one‐dimensional band as observed in the same material, suggest CsV8Sb12 as an ideal platform for exploring novel transport properties.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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