Revealing Higher-Order Topological Bulk-boundary Correspondence in Bismuth Crystal with Spin-helical Hinge State Loop and Proximity Superconductivity
arXiv:2502.07533 · doi:10.1016/j.scib.2025.08.047
Abstract
Topological materials are typically characterized by gapless boundary states originated from nontrivial bulk band topology, known as topological bulk-boundary correspondence. Recently, this fundamental concept has been generalized in higher-order topological insulators (HOTIs). E.g., a second-order three-dimensional (3D) TI hosts one-dimensional (1D) topological hinge states winding around the crystal. However, a complete verification of higher-order topology is still lacking as it requires probing all the crystal boundaries. Here we studied a promising candidate of second-order TI, bismuth (Bi), in the form of mesoscopic crystals grown on superconducting V3Si. Using low-temperature scanning tunneling microscopy, we directly observed dispersive 1D states on various hinges of the crystal. Upon introducing magnetic scatterers, new scattering channels emerged selectively on certain hinges, revealing their spin-helical nature. Combining first-principle calculation and global symmetry analysis, we find these hinge states are topological and formed a closed loop encircling the crystal. This provides direct evidence on the higher-order topology in Bi. Moreover, proximity superconductivity is observed in the topological hinge states, enabling HOTI as a promising platform for realizing topological superconductivity and Majorana quasiparticles.
Complete version,29 pages,16 figures. Supplementary Material included
References in corpus (8)
- -dimensional edge states of rotation symmetry protected topological states
- Topological Surface States Protected From Backscattering by Chiral Spin Texture
- Reflection symmetric second-order topological insulators and superconductors
- One-dimensional Topological Edge States of Bismuth Bilayers
- Transferable E(3) equivariant parameterization for Hamiltonian of molecules and solids
- Evidence for Higher order topology in Bi and BiSb
- Observation of backscattering induced by magnetism in a topological edge state
- Surface structure and multigap superconductivity of V3Si (111) revealed by scanning tunneling microscopy