arXiv · 1605.07356
Universal classification of twisted, strained and sheared graphene moir\'e superlattices
Abstract
Moir\'e superlattices in graphene supported on various substrates have opened a new avenue to engineer graphene's electronic properties. Yet, the exact crystallographic structure on which their band structure depends remains highly debated. In this scanning tunneling microscopy and density functional theory study, we have analysed graphene samples grown on multilayer graphene prepared onto SiC and on the close-packed surfaces of Re and Ir with ultra-high precision. We resolve small-angle twists and shears in graphene, and identify large unit cells comprising more than 1,000 carbon atoms and exhibiting non-trivial nanopatterns for moir\'e superlattices, which are commensurate to the graphene lattice. Finally, a general formalism applicable to any hexagonal moir\'e is presented to classify all reported structures.
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Alexandre Artaud, Laurence Magaud, Toai Le Quang, Valérie Guisset, Philippe David, Claude Chapelier, Johann Coraux. 2016-05-24. Universal classification of twisted, strained and sheared graphene moir\'e superlattices. https://doi.org/10.1038/srep25670
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