English

Stacking-dependent topological electronic structures in honeycomb-kagome heterolayers

Materials Science 2025-02-21 v1 Mesoscale and Nanoscale Physics

Abstract

Heterostructures of stacked two-dimensional lattices have shown great promise for engineering novel material properties. As an archetypal example of such a system, the hexagon-shared honeycomb-kagome lattice has been experimentally synthesized in various material platforms. In this work, we explore three rotationally symmetric variants of the honeycomb-kagome lattice: the hexagonal, triagonal, and biaxial phases. While the triagonal and biaxial phases exhibit trivial insulating and Dirac semimetal band structures, respectively, the hexagonal phase hosts a higher-order topological phase driven by band inversion near the Γ\Gamma-point. This highlights a key distinction from the conventional band inversions at the KK-point observed in hexagonal homobilayer systems. Furthermore, we demonstrate how the distinct topological properties of these phases result in network band structures within moir\'e heterostructures formed by twisted or lattice-mismatched HK systems. These network band structures can be experimentally observed through extrinsic twisting or intrinsic lattice mismatching between the honeycomb and kagome systems.

Keywords

Cite

@article{arxiv.2502.14861,
  title  = {Stacking-dependent topological electronic structures in honeycomb-kagome heterolayers},
  author = {Chan Bin Bark and Hanbyul Kim and Seik Pak and Hong-Guk Min and Sungkyun Ahn and Youngkuk Kim and Moon Jip Park},
  journal= {arXiv preprint arXiv:2502.14861},
  year   = {2025}
}

Comments

10 pages, 9 figures

R2 v1 2026-06-28T21:51:50.276Z