Moiré Imaging in Twisted Bilayer Graphene Aligned on Hexagonal Boron Nitride
arXiv:2102.08594
Abstract
Moiré superlattices (MSL) formed in angle-aligned bilayers of van der Waals materials have become a promising platform to realize novel two-dimensional electronic states. Angle-aligned trilayer structures can form two sets of MSLs which could potentially interfere with each other. In this work, we directly image the moiré patterns in both monolayer graphene aligned on hBN and twisted bilayer graphene aligned on hBN, using combined scanning microwave impedance microscopy and conductive atomic force microscopy. Correlation of the two techniques reveals the contrast mechanism for the achieved ultrahigh spatial resolution (<2 nm). We observe two sets of MSLs with different periodicities in the trilayer stack. The smaller MSL breaks the 6-fold rotational symmetry and exhibits abrupt discontinuities at the boundaries of the larger MSL. Using a rigid atomic-stacking model, we demonstrate that the hBN layer considerably modifies the MSL of twisted bilayer graphene. We further analyze its effect on the reciprocal space spectrum of the dual-moiré system.
References in corpus (7)
- Observation of Moiré Excitons in WSe2/WS2 Heterostructure Superlattices
- Photonic crystals for nano-light in moiré graphene superlattices
- Silane-Catalyzed Fast Growth of Large Single-Crystalline Graphene on Hexagonal Boron Nitride
- Hierarchy of Hofstadter states and replica quantum Hall ferromagnetism in graphene superlattices
- New generation of moiré superlattices in doubly aligned hBN/graphene/hBN heterostructures
- Composite super-moiré lattices in double aligned graphene heterostructures
- Double moiré with a twist: super-moiré in encapsulated graphene