Large-Area Single-Crystal Graphene via Self-Organization at the Macroscale
Publication date
2020-11-12
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Abstract
In 1665 Christiaan Huygens first noticed how two pendulums, regardless of their initial state, would synchronize. It is now known that the universe is full of complex self-organizing systems, from neural networks to correlated materials. Here, graphene flakes, nucleated over a polycrystalline graphene film, synchronize during growth so as to ultimately yield a common crystal orientation at the macroscale. Strain and diffusion gradients are argued as the probable causes for the long-range cross-talk between flakes and the formation of a single-grain graphene layer. The work demonstrates that graphene synthesis can be advanced to control the nucleated crystal shape, registry, and relative alignment between graphene crystals for large area, that is, a single-crystal bilayer, and (AB-stacked) few-layer graphene can been grown at the wafer scale.
Keywords
2D materials, bilayer graphene, global alignment, graphene, stacking order
Citation
Ta, H Q, Bachmatiuk, A, Mendes, R G, Perello, D J, Zhao, L, Trzebicka, B, Gemming, T, Rotkin, S V & Rümmeli, M H 2020, 'Large-Area Single-Crystal Graphene via Self-Organization at the Macroscale', Advanced Materials, vol. 32, no. 45, 2002755. https://doi.org/10.1002/adma.202002755