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dc.contributor.authorZobelli, A.
dc.contributor.authorIvanovskaya, V.
dc.contributor.authorWagner, P.
dc.contributor.authorSuarez-Martinez, Irene
dc.contributor.authorYaya, A.
dc.contributor.authorEwels, C.
dc.date.accessioned2017-01-30T12:05:57Z
dc.date.available2017-01-30T12:05:57Z
dc.date.created2012-01-18T07:57:17Z
dc.date.issued2012
dc.identifier.citationZobelli, Alberto and Ivanovskaya, Viktoria and Wagner, Phillip and Suarez-Martinez, Irene and Yaya, Abu and Ewels, Chris P. 2012. A comparative study of density functional and density functional tight binding calculations of defects in graphene. Physica Status Solidi (b). 249 (2): pp. 276-282.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/18106
dc.identifier.doi10.1002/pssb.201100630
dc.description.abstract

The density functional tight binding approach (DFTB) is well adapted for the study of point and line defects in graphene based systems. After briefly reviewing the use of DFTB in this area, we present a comparative study of defect structures, energies, and dynamics between DFTB results obtained using the dftb+ code, and density functional results using the localized Gaussian orbital code, AIMPRO. DFTB accurately reproduces structures and energies for a range of point defect structures such as vacancies and Stone–Wales defects in graphene, as well as various unfunctionalized and hydroxylated graphene sheet edges. Migration barriers for the vacancy and Stone–Wales defect formation barriers are accurately reproduced using a nudged elastic band approach. Finally we explore the potential for dynamic defect simulations using DFTB, taking as an example electron irradiation damage in graphene.

dc.publisherWiley-Blackwell
dc.subjectDFTB
dc.subjectirradiation
dc.subjectgraphene
dc.subjectedges
dc.subjectdefects
dc.titleA comparative study of density functional and density functional tight binding calculations of defects in graphene
dc.typeJournal Article
dcterms.source.volume249
dcterms.source.number2
dcterms.source.startPage276
dcterms.source.endPage282
dcterms.source.issn18626300
dcterms.source.titlePhysica Status Solidi A
curtin.departmentNanochemistry Research Institute (Research Institute)
curtin.accessStatusFulltext not available


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