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In situ observation of graphene sublimation and multi-layer edge reconstructions

Author(s)
Huang, Jian YuDing, FengYakobson, Boris I.Lu, PingQi, LiangLi, Ju
Issued Date
2009-06
DOI
10.1073/pnas.0905193106
URI
https://scholarworks.unist.ac.kr/handle/201301/31398
Fulltext
https://www.pnas.org/content/106/25/10103
Citation
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, v.106, no.25, pp.10103 - 10108
Abstract
We induced sublimation of suspended few-layer graphene by in situ Joule-heating inside a transmission electron microscope. The graphene sublimation fronts consisted of mostly {1100} zigzag edges. Under appropriate conditions, a fractal-like "coastline'' morphology was observed. Extensive multiple-layer reconstructions at the graphene edges led to the formation of unique carbon nanostructures, such as sp(2)-bonded bilayer edges (BLEs) and nanotubes connected to BLEs. Flat fullerenes/nanopods and nanotubes tunneling multiple layers of graphene sheets were also observed. Remarkably, >99% of the graphene edges observed during sublimation are BLEs rather than monolayer edges (MLEs), indicating that BLEs are the stable edges in graphene at high temperatures. We reproduced the "coastline'' sublimation morphologies by kinetic Monte Carlo (kMC) simulations. The simulation revealed geometrical and topological features unique to quasi-2-dimensional (2D) graphene sublimation and reconstructions. These reconstructions were enabled by bending, which cannot occur in first-order phase transformations of 3D bulk materials. These results indicate that substrate of multiple-layer graphene can offer unique opportunities for tailoring carbon-based nanostructures and engineering novel nano-devices with complex topologies.
Publisher
NATL ACAD SCIENCES
ISSN
0027-8424
Keyword (Author)
flat fullerenefractal sublimationgraphene bilayer edgein situ electron microscopyfractional nanotube
Keyword
CARBON NANOTUBESCRYSTALSSHEETS

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