English

Substrate-induced topological minibands in graphene

Mesoscale and Nanoscale Physics 2019-10-29 v3 Materials Science Quantum Gases Optics

Abstract

The honeycomb lattice sets the basic arena for numerous ideas to implement electronic, photonic, or phononic topological bands in (meta-)materials. Novel opportunities to manipulate Dirac electrons in graphene through band engineering arise from superlattice potentials as induced by a substrate such as hexagonal boron-nitride. Making use of the general form of a weak substrate potential as dictated by symmetry, we analytically derive the low-energy minibands of the superstructure, including a characteristic 1.5 Dirac cone deriving from a three-band crossing at the Brillouin zone edge. Assuming a large supercell, we focus on a single Dirac cone (or valley) and find all possible arrangements of the low-energy electron and hole bands in a complete six-dimensional parameter space. We identify the various symmetry planes in parameter space inducing gap closures and find the sectors hosting topological minibands, including also complex band crossings that generate a valley Chern number atypically larger than one. Our map provides a starting point for the systematic design of topological bands by substrate engineering.

Keywords

Cite

@article{arxiv.1805.10670,
  title  = {Substrate-induced topological minibands in graphene},
  author = {Tobias M. R. Wolf and Oded Zilberberg and Ivan Levkivkskyi and Gianni Blatter},
  journal= {arXiv preprint arXiv:1805.10670},
  year   = {2019}
}

Comments

13 pages, 7 figures, 1 appendix. (Published version)

R2 v1 2026-06-23T02:09:45.576Z