Pressure dependence of the magic twist angle in graphene superlattices

The recently demonstrated unconventional superconductivity [Cao et al., Nature (London) 556, 43 (2018)10.1038/nature26160] in twisted bilayer graphene (tBLG) opens the possibility for interesting applications of two-dimensional layers that involve correlated electron states. Here we explore the poss...

Full description

Bibliographic Details
Main Authors: Carr, Stephen (Author), Fang, Shiang (Author), Jarillo-Herrero, Pablo (Contributor), Kaxiras, Efthimios (Author)
Other Authors: Massachusetts Institute of Technology. Department of Physics (Contributor)
Format: Article
Language:English
Published: American Physical Society, 2018-09-14T18:58:32Z.
Subjects:
Online Access:Get fulltext
Description
Summary:The recently demonstrated unconventional superconductivity [Cao et al., Nature (London) 556, 43 (2018)10.1038/nature26160] in twisted bilayer graphene (tBLG) opens the possibility for interesting applications of two-dimensional layers that involve correlated electron states. Here we explore the possibility of modifying electronic correlations by the application of uniaxial pressure on the weakly interacting layers, which results in increased interlayer coupling and a modification of the magic angle value and associated density of states. Our findings are based on first-principles calculations that accurately describe the height-dependent interlayer coupling through the combined use of density functional theory and maximally localized Wannier functions. We obtain the relationship between twist angle and external pressure for the magic angle flat bands of tBLG. This may provide a convenient method to tune electron correlations by controlling the length scale of the superlattice.
United States. Army Research Office (Award W911NF-14-0247)