New Journal of Physics (Jan 2024)

Higher-order topological Dirac phase in Y3InC: a first-principles study

  • P C Sreeparvathy,
  • Rovi Angelo B Villaos,
  • Zhi-Quan Huang,
  • Feng-Chuan Chuang

DOI
https://doi.org/10.1088/1367-2630/ad59ff
Journal volume & issue
Vol. 26, no. 7
p. 073007

Abstract

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Higher-order topological insulators hosting intriguing topologically protected hinge or corner states are of significant research interest. However, materials that possess higher-order topological hinge states associated with gapless bulk Dirac phases still need to be explored. Using first-principles calculations with hybrid exchange functional, we explore the electronic structure and topological properties of Y _3 InC and a few of its sister compounds, totaling 16 bulk materials. A symmetry-protected triple point phase, with dominated d-t _2 _g character, is observed in Y _3 InC without spin–orbit coupling (SOC). Interestingly, the SOC induces a twin Dirac node phase in the bulk Y _3 InC. Furthermore, the computed Z _4 topological invariant reveals the higher-order topological nature of investigated materials. To demonstrate the gapless hinge states, we conduct edge state calculations using a rod-shaped geometry of Y _3 InC. Remarkably, Y _3 InC is identified to host multi-Dirac nodes in the bulk and surface phases together with the higher-order hinge states. These results lay the groundwork for further experimental and theoretical investigations into cubic antiperovskite materials for higher-order topological phases.

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