English

Gate tunable topological flat bands in twisted monolayer-bilayer graphene

Mesoscale and Nanoscale Physics 2020-07-15 v1

Abstract

We investigate the band structure of twisted monolayer-bilayer graphene (tMBG), or twisted graphene on bilayer graphene (tGBG), as a function of twist angles and perpendicular electric fields in search of optimum conditions for achieving isolated nearly flat bands. Narrow bandwidths comparable or smaller than the effective Coulomb energies satisfying Ueff/W1U_{\textrm{eff}} /W \gtrsim 1 are expected for twist angles in the range of 0.31.50.3^{\circ} \sim 1.5^{\circ}, more specifically in islands around θ0.5,0.85,1.3\theta \sim 0.5^{\circ}, \, 0.85^{\circ}, \,1.3^{\circ} for appropriate perpendicular electric field magnitudes and directions. The valley Chern numbers of the electron-hole asymmetric bands depend intrinsically on the details of the hopping terms in the bilayer graphene, and extrinsically on factors like electric fields or average staggered potentials in the graphene layer aligned with the contacting hexagonal boron nitride substrate. This tunability of the band isolation, bandwidth, and valley Chern numbers makes of tMBG a more versatile system than twisted bilayer graphene for finding nearly flat bands prone to strong correlations.

Keywords

Cite

@article{arxiv.2005.01258,
  title  = {Gate tunable topological flat bands in twisted monolayer-bilayer graphene},
  author = {Youngju Park and Bheema Lingam Chittari and Jeil Jung},
  journal= {arXiv preprint arXiv:2005.01258},
  year   = {2020}
}

Comments

15 pages, 11 figures