4.3 Article

Observation of multiple nodal lines in SmSbTe

Journal

PHYSICAL REVIEW MATERIALS
Volume 6, Issue 3, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevMaterials.6.L031201

Keywords

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Funding

  1. National Science Foundation (NSF) [DMR-1847962]
  2. Air Force Office of Scientific Research [FA9550-17-1-0415]
  3. Air Force Office of Scientific Research MURI [FA9550-20-1-0322]
  4. Center for Thermal Energy Transport under Irradiation, an Energy Frontier Research Center - U.S. DOE, Office of Basic Energy Sciences
  5. Swedish Research Council (VR)
  6. Knut and Alice Wallenberg Foundation [2015.0060]
  7. Swedish National Infrastructure for Computing (SNIC) [2018-05973]
  8. INL Laboratory Directed Research and Development (LDRD) Program under DOE Idaho Operations Office [DE-AC07-05ID14517]
  9. U.S. DOE Basic Energy Science program through the project Science at 100T at LANL
  10. National Science Foundation [DMR-1644779]
  11. state of Florida
  12. National Science Centre (Poland) [2021/41/B/ST3/01141]

Ask authors/readers for more resources

In this Letter, we report a systematic study of the electronic structure of SmSbTe and identify multiple Dirac nodes forming nodal lines in the bulk Brillouin zone, as well as a surface Dirac-like state. This study is significant in understanding the topological electronic structure of LnSbTe materials.
Having been a ground for various topological fermionic phases, the family of ZrSiS-type 111 materials has been under experimental and theoretical investigations. Within this family of materials, the subfamily LnSbTe (Ln = lanthanide elements) is gaining interest in recent times as the strong correlation effects and magnetism arising from the 4f electrons of the lanthanides can provide an important platform to study the link between topology, magnetism, and correlation. In this Letter, we report the systematic study of the electronic structure of SmSbTe-a member of the LnSbTe subfamily-by utilizing angle-resolved photoemission spectroscopy in conjunction with first-principles calculations, transport, and magnetic measurements. Our experimental results identify multiple Dirac nodes forming the nodal lines along the Gamma-X and Z-R directions in the bulk Brillouin zone (BZ) as predicted by our theoretical calculations. A surface Dirac-like state is also observed at the (X) over bar point of the surface BZ. Our study highlights SmSbTe as a promising candidate to understand the topological electronic structure of LnSbTe materials.

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