Pressure-modulated Moire superlattice reconstructions in
twisted bilayer graphene
X Yang and L Cai, APPLIED SURFACE SCIENCE, 714, 164389 (2025).
DOI: 10.1016/j.apsusc.2025.164389
Moire superlattice reconstructions strongly regulate the
electronic and mechanical properties of twisted bilayer graphene (TBG),
yet their their atomic-scale structural transformations remain
insufficiently understood computationally. Here, we use molecular
dynamics simulations to study reconstruction characteristics of
Moire superlattices and their evolution under pressure.
Our results corroborate previous experimental findings and reveal a
strong dependence of pressure-modulated reconstructions on global twist
angles (B) and local stacking. We demonstrate that locally reconstructed
twist angles exhibit distinct domain-specific responses: AA domains show
significant enhancement at small B, whereas AB domains display similar
enhancement at larger B. In contrast, SP domains exhibit the minimal
angular dependence. This domain-specific behavior arises from pressure-
induced changes in interlayer potential and in-plane elastic energy
redistribution, which together govern stacking stability. Furthermore,
pressure intensifies in-plane deformations localized in SP domains,
driving a progressive transition from stripe-like strain localization to
discrete soliton-like patterns with increasing B. Conversely, pressure
suppresses out-of-plane corrugations and reduces their angular
dependence, particularly in AA domains. Our study uncovers TBG's
nanoscale mechanical response and provides a computational approach
applicable to other van der Waals heterostructures.
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