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arXiv · 2104.02221

Multiple Symmetry-Protected Dirac Nodal Lines in A Quasi-One-Dimensional Semimetal

Abstract

Nodal-line semimetals (NLSMs) contains Dirac/Weyl type band-crossing nodes extending into shapes of line, loop and chain in the reciprocal space, leading to novel band topology and transport responses. Robust NLSMs against spin-orbit coupling typically occur in three-dimensional materials with more symmetry operations to protect the line nodes of band crossing, while the possibilities in lower-dimensional materials are rarely discussed. Here we demonstrate robust NLSM phase in a quasi-one-dimensional nonmagnetic semimetal TaNiTe5. Combining angle-resolved photoemission spectroscopy measurements and first-principles calculations, we reveal how reduced dimension can interact with nonsymmorphic symmetry and result into multiple Dirac-type nodal lines with four-fold degeneracy. Our findings suggest rich physics and application in (quasi-)one-dimensional topological materials and call for further investigation on the interplay between the quantum confinement and nontrivial band topology.

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Zhanyang Hao, Weizhao Chen, Yuan Wang, Jiayu Li, Xiao-Ming Ma, Yu-Jie Hao, Ruie Lu, Zecheng Shen, Zhicheng Jiang, Wanling Liu, Qi Jiang, Xiao Lei, Le Wang, Ying Fu, Liang Zhou, Lianglong Huang, Zhengtai Liu, Mao Ye, Dawei Shen, Jiawei Mei, Hongtao He, Cai Liu, Ke Deng, Chang Liu, Qihang Liu, Chaoyu Chen. 2021-04-06. Multiple Symmetry-Protected Dirac Nodal Lines in A Quasi-One-Dimensional Semimetal. https://doi.org/10.1103/physrevb.104.115158

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