ArXiv TLDR

Type-I and Type-II Saddle Points and a Topological Flat Band in a Bi-Pyrochlore Superconductor CsBi2

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2604.07805

Yusei Morita, Yongkai Li, Yu-Hao Wei, Kosuke Nakayama, Zhiwei Wang + 10 more

cond-mat.mes-hallcond-mat.str-el

TLDR

Researchers found a topological flat band and type-I/II saddle points in the 3D superconductor CsBi2, enhancing its electron density of states.

Key contributions

  • Identified a dispersionless topological flat band with p-orbital character in 3D CsBi2.
  • Discovered coexisting type-I and type-II saddle points connected by a flat band.
  • These unique structures cooperatively enhance the electron density of states (DOS).
  • Confirmed these 3D electronic structures using ARPES and first-principles calculations.

Why it matters

This paper reveals a novel mechanism for enhancing the electron density of states in 3D systems with strong spin-orbit coupling. It lays a foundation for exploring exotic quantum phenomena driven by the interplay of topology, singularities, and strong SOC in pyrochlore materials.

Original Abstract

The divergence of the electron density of states (DOS) plays an important role in enhancing many-body interactions and inducing various quantum phases in low-dimensional systems. However, such unique electronic structures remain experimentally elusive in three-dimensional (3D) systems, particularly those with strong spin-orbit coupling (SOC). Using angle-resolved photoemission spectroscopy and first-principles calculations for a Laves-phase superconductor CsBi2, which features a Bi-pyrochlore 3D network with strong SOC, we identify two characteristic electronic structures with a large DOS. One is a dispersionless topological flat band with p-orbital character, locally formed around the U-K line, which enhances DOS near the Fermi level. The other involves type-I and type-II saddle points connected by a flat band, which cooperatively produce an enhancement in the DOS. Our findings suggest a novel mechanism for achieving a DOS enhancement and lay a foundation for exploring exotic phenomena driven by the interplay of multiple singularities with a large DOS, nontrivial topology, and strong SOC in 3D pyrochlores.

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