Scinovex
article Open AccessTop 1% cited

Lattice relaxation and energy band modulation in twisted bilayer graphene

Nguyen N. T. NamMikito Koshino

Abstract

We theoretically study the lattice relaxation in the twisted bilayer graphene (TBG) and its effect on the electronic band structure. We develop an effective continuum theory to describe the lattice relaxation in general TBGs and obtain the optimized structure to minimize the total energy. At small rotation angles $<{2}^{\ensuremath{\circ}}$, in particular, we find that the relaxed lattice drastically reduces the area of the AA stacking region and forms a triangular domain structure with alternating AB and BA stacking regions. We then investigate the effect of the domain formation on the electronic band structure. The most notable change from the nonrelaxed model is that an energy gap of up to 20 meV opens at the superlattice subband edges on the electron and hole sides. We also find that the lattice relaxation significantly enhances the Fermi velocity, which was strongly suppressed in the nonrelaxed model.

Graphene research and applications2D Materials and ApplicationsQuantum and electron transport phenomenaCondensed matter physicsStackingElectronic band structureSuperlatticeFermi energyLattice (music)Hexagonal latticeBilayer grapheneBand gapPhysics

Funding

  • Japan Society for the Promotion of Science
Citations
541
FWCI
18.87
field-weighted impact
References
55
Percentile
100%
vs. same field & year
Citations per year
Cited by
Faithful tight-binding models and fragile topology of magic-angle bilayer graphene
Physical review. B./Physical review. B · 2019 · 404 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.