English

Facet dependent surface energy gap on magnetic topological insulators

Materials Science 2022-04-19 v1 Mesoscale and Nanoscale Physics

Abstract

Magnetic topological insulators (MnBi2_2Te4_4)(Bi2_2Te3_3)n_n (n=0,1,2,3n=0,1,2,3) are promising to realize exotic topological states such as the quantum anomalous Hall effect (QAHE) and axion insulator (AI), where the Bi2_2Te3_3 layer introduces versatility to engineer electronic and magnetic properties. However, whether surface states on the Bi2_2Te3_3 terminated facet are gapless or gapped is debated, and its consequences in thin-film properties are rarely discussed. In this work, we find that the Bi2_2Te3_3 terminated facets are gapless for n1n \ge 1 compounds by calculations. Despite that the surface Bi2_2Te3_3 (one layer or more) and underlying MnBi2_2Te4_4 layers hybridize and give rise to a gap, such a hybridization gap overlaps with bulk valence bands, leading to a gapless surface after all. Such a metallic surface poses a fundamental challenge to realize QAHE or AI, which requires an insulating gap in thin films with at least one Bi2_2Te3_3 surface. In theory, the insulating phase can still be realized in a film if both surfaces are MnBi2_2Te4_4 layers. Otherwise, it requires that the film thickness is less than 10\sim20 nm to push down bulk valence bands via the size effect. Our work paves the way to understand surface states and design bulk-insulating quantum devices in magnetic topological materials.

Keywords

Cite

@article{arxiv.2201.02769,
  title  = {Facet dependent surface energy gap on magnetic topological insulators},
  author = {Hengxin Tan and Binghai Yan},
  journal= {arXiv preprint arXiv:2201.02769},
  year   = {2022}
}

Comments

10 pages for the main text (4 figures) and 8 pages for supplemental material

R2 v1 2026-06-24T08:43:31.521Z