Strain-induced stacking transition in bilayer graphene
arXiv:2206.01455 · doi:10.1088/1361-648X/ac965d
Abstract
Strain, both naturally occurring and deliberately engineered, can have a considerable effect on the structural and electronic properties of 2D and layered materials. Uniaxial or biaxial heterostrain modifies the stacking arrangement of bilayer graphene (BLG) which subsequently influences the electronic structure of the bilayer. Here, we use Density Functional Theory (DFT) calculations to investigate the interplay between an external applied heterostrain and the resulting stacking in BLG. We determine how a strain applied to one layer is transferred to a second, 'free' layer and at what critical strain the ground-state AB-stacking is disrupted. To overcome limitations introduced by periodic boundary conditions, we consider an approximate system consisting of an infinite graphene sheet and an armchair graphene nanoribbon (AGNR). We find that above a critical strain of ~1%, it is energetically favourable for the free layer to be unstrained, indicating a transition between uniform AB-stacking and non-uniform mixed stacking. This is in agreement with a simple model estimate based on the individual energy contributions of strain and stacking effects. Our findings suggest that small levels of strain provide a platform to reversibly engineer stacking order and Moiré features in bilayers, providing a viable alternative to twistronics to engineer topological and exotic physical phenomena in such systems.
9 pages, 5 figures
References in corpus (16)
- Electric Field Effect in Atomically Thin Carbon Films
- Two Dimensional Atomic Crystals
- Biased bilayer graphene: semiconductor with a gap tunable by electric field effect
- Uniaxial Strain in Graphene by Raman Spectroscopy: G peak splitting, Gruneisen Parameters and Sample Orientation
- A tight-binding approach to uniaxial strain in graphene
- The electronic properties of bilayer graphene
- Elastic Properties of Chemical-Vapor-Deposited Monolayer MoS2, WS2, and Their Bilayer Heterostructures
- Lattice relaxation and energy band modulation in twisted bilayer graphenes
- Subjecting a graphene monolayer to tension and compression
- Controlling Energy Gap of Bilayer Graphene by Strain
- Graphene Nanobubbles as Valley Filters and Beamsplitters
- Tunable macroscale structural superlubricity in two-layer graphene via strain engineering
- Strained bilayer graphene: Band structure topology and Landau level spectrum
- An Ab Initio Study on Energy Gap of Bilayer Graphene Nanoribbons with Armchair Edges
- Strained Bilayer Graphene, Emergent Energy Scales, and Moire Gravity
- Strain dependent conductivity in biased bilayer graphene