TY - JOUR
T1 - Realization of practical eightfold fermions and fourfold van Hove singularity in TaCo2Te2
AU - Rong, Hongtao
AU - Huang, Zhenqiao
AU - Zhang, Xin
AU - Kumar, Shiv
AU - Zhang, Fayuang
AU - Zhang, Chengcheng
AU - Wang, Yuan
AU - Hao, Zhanyang
AU - Cai, Yongqing
AU - Wang, Le
AU - Liu, Cai
AU - Ma, Xiaoming
AU - Guo, Shu
AU - Shen, Bing
AU - Liu, Yi
AU - Cui, Shengtao
AU - Shimada, Kenya
AU - Wu, Quansheng
AU - Lin, Junhao
AU - Yao, Yugui
AU - Wang, Zhiwei
AU - Xu, Hu
AU - Chen, Chaoyu
N1 - Publisher Copyright:
© 2023, The Author(s).
PY - 2023/12
Y1 - 2023/12
N2 - Space groups describing the symmetry of lattice structure allow the emergence of fermionic quasiparticles with various degeneracy in the band structure. Theoretical efforts have predicted many materials hosting fermions with the highest degeneracy, i.e., eightfold fermions, yet lacking experimental realization. Here, we explore the band degeneracies in TaCo2Te2 crystals. Through systematic experimental and theoretical analyses, we establish TaCo2Te2 as a nonsymmorphic crystal with negligible spin–orbit coupling (SOC) and long-range magnetic order. These critical properties guarantee the realization of practical eightfold fermions and fourfold van Hove singularity, as directly observed by photoemission spectroscopy. TaCo2Te2 serves as a topological quantum critical platform, which can be tuned into various magnetic, topologically trivial, and nontrivial phases by adding strain, magnetic field, or SOC. The latter is demonstrated by our first-principles calculations, which show that enhancing SOC in TaCo2Te2 will promote the experimental observation of bulk hourglass fermions. Our results establish TaCo2Te2 as a platform to explore the interplay between symmetry and band topology.
AB - Space groups describing the symmetry of lattice structure allow the emergence of fermionic quasiparticles with various degeneracy in the band structure. Theoretical efforts have predicted many materials hosting fermions with the highest degeneracy, i.e., eightfold fermions, yet lacking experimental realization. Here, we explore the band degeneracies in TaCo2Te2 crystals. Through systematic experimental and theoretical analyses, we establish TaCo2Te2 as a nonsymmorphic crystal with negligible spin–orbit coupling (SOC) and long-range magnetic order. These critical properties guarantee the realization of practical eightfold fermions and fourfold van Hove singularity, as directly observed by photoemission spectroscopy. TaCo2Te2 serves as a topological quantum critical platform, which can be tuned into various magnetic, topologically trivial, and nontrivial phases by adding strain, magnetic field, or SOC. The latter is demonstrated by our first-principles calculations, which show that enhancing SOC in TaCo2Te2 will promote the experimental observation of bulk hourglass fermions. Our results establish TaCo2Te2 as a platform to explore the interplay between symmetry and band topology.
UR - http://www.scopus.com/inward/record.url?scp=85160611669&partnerID=8YFLogxK
U2 - 10.1038/s41535-023-00565-8
DO - 10.1038/s41535-023-00565-8
M3 - Article
AN - SCOPUS:85160611669
SN - 2397-4648
VL - 8
JO - npj Quantum Materials
JF - npj Quantum Materials
IS - 1
M1 - 29
ER -