Diffusion, Coalescence, and Reconstruction of Vacancy Defects in Graphene Layers
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- 8 November 2005
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 95 (20) , 205501
- https://doi.org/10.1103/physrevlett.95.205501
Abstract
Diffusion, coalescence, and reconstruction of vacancy defects in graphene layers are investigated by tight-binding molecular dynamics (TBMD) simulations and by first principles total energy calculations. It is observed in the TBMD simulations that two single vacancies coalesce into a 5-8-5 double vacancy at the temperature of 3000 K, and it is further reconstructed into a new defect structure, the 555-777 defect, by the Stone-Wales type transformation at higher temperatures. First principles calculations confirm that the 555-777 defect is energetically much more stable than two separated single vacancies, and the energy of the 555-777 defect is also slightly lower than that of the 5-8-5 double vacancy. In TBMD simulation, it is also found that the four single vacancies reconstruct into two collective 555-777 defects which is the unit for the hexagonal haeckelite structure proposed by Terrones et al. [ Phys. Rev. Lett. 84, 1716 (2000)].Keywords
This publication has 21 references indexed in Scilit:
- Mechanical properties of carbon nanotubes with vacancies and related defectsPhysical Review B, 2004
- Nature of Single Vacancy in Achiral Carbon NanotubesPhysical Review Letters, 2004
- Induced Magnetic Ordering by Proton Irradiation in GraphitePhysical Review Letters, 2003
- Ferromagnetic Spots in Graphite Produced by Proton IrradiationAdvanced Materials, 2003
- Metastable Frenkel Pair Defect in Graphite: Source of Wigner Energy?Physical Review Letters, 2003
- Magnetic Properties and Diffusion of Adatoms on a Graphene SheetPhysical Review Letters, 2003
- Coalescence of Single-Walled Carbon NanotubesScience, 2000
- Surface Reconstructions and Dimensional Changes in Single-Walled Carbon NanotubesPhysical Review Letters, 1998
- Formation of Ion Irradiation Induced Small-Scale Defects on Graphite SurfacesPhysical Review Letters, 1996
- Energetics of defects and diffusion mechanisms in graphitePhysical Review Letters, 1988