Composite super-moiré lattices in double aligned graphene heterostructures
arXiv:1912.12268 · doi:10.1126/sciadv.aay8897
Abstract
When two-dimensional atomic crystals are brought into close proximity to form a van der Waals heterostructure, neighbouring crystals can start influencing each others electronic properties. Of particular interest is the situation when the periodicity of the two crystals closely match and a moiré pattern forms, which results in specific electron scattering, reconstruction of electronic and excitonic spectra, crystal reconstruction, and many other effects. Thus, formation of moiré patterns is a viable tool of controlling the electronic properties of 2D materials. At the same time, the difference in the interatomic distances for the two crystals combined, determines the range in which the electronic spectrum is reconstructed, and thus is a barrier to the low energy regime. Here we present a way which allows spectrum reconstruction at all energies. By using graphene which is aligned simultaneously to two hexagonal boron nitride layers, one can make electrons scatter in the differential moiré pattern, which can have arbitrarily small wavevector and, thus results in spectrum reconstruction at arbitrarily low energies. We demonstrate that the strength of such a potential relies crucially on the atomic reconstruction of graphene within the differential moiré super-cell. Such structures offer further opportunity in tuning the electronic spectra of two-dimensional materials.
35 pages, 15 figures
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Cited by in corpus (14)
- Moiré Commensurability and the Quantum Anomalous Hall Effect in Twisted Bilayer Graphene on Hexagonal Boron Nitride
- Double moiré with a twist: super-moiré in encapsulated graphene
- Towards edge engineering of two-dimensional layered transition-metal dichalcogenides by chemical vapor deposition
- Electron-hole asymmetry and band gaps of commensurate double moire patterns in twisted bilayer graphene on hexagonal boron nitride
- Enhanced electron-phonon coupling in doubly aligned hexagonal boron nitride bilayer graphene heterostructure
- Heteromoiré Engineering on Magnetic Bloch Transport in Twisted Graphene Superlattices
- Electric field-tunable layer polarization in graphene/boron nitride twisted quadrilayer superlattices
- Moiré effects in graphene--hBN heterostructures
- Band gap formation in commensurate twisted bilayer graphene/hBN moiré lattices
- Magnetic Bloch States at Integer Flux Quanta Induced by Super-moiré Potential in Graphene Aligned with Twisted Boron Nitride
- Moiré Imaging in Twisted Bilayer Graphene Aligned on Hexagonal Boron Nitride
- Electric field tunable bands in doubly aligned bilayer graphene hBN moire superlattice
- Supermoiré-trapped quadrupolar exciton
- Coexisting Massive and Massless Dirac Fermions in Moire'-Reconstructed Bilayer Graphene