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dc.contributor.authorReimers, J.
dc.contributor.authorSolomon, G.
dc.contributor.authorGagliardi, A.
dc.contributor.authorBilic, Ante
dc.contributor.authorHush, N.
dc.contributor.authorFrauenheim, T.
dc.contributor.authorDi Carlo, A.
dc.contributor.authorPecchia, A.
dc.date.accessioned2017-01-30T12:50:09Z
dc.date.available2017-01-30T12:50:09Z
dc.date.created2008-11-12T23:32:36Z
dc.date.issued2007
dc.identifier.citationReimers, Jeffrey and Solomon, Gemma and Gagliardi, Alessio and Bilic, Ante and Hush, Noel and Frauenheim, Thomas and Di Carlo, Aldo and Pecchia, Alessandro. 2007. The green's function density functional tight-binding (gDFTB) method for molecular electronic conduction. Journal of Physical Chemistry A 111 (26): 5692-5702.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/25771
dc.description.abstract

A review is presented of the nonequilibrium Green's function (NEGF) method "gDFTB" for evaluating elastic and inelastic conduction through single molecules employing the density functional tight-binding (DFTB) electronic structure method. This focuses on the possible advantages that DFTB implementations of NEGF have over conventional methods based on density functional theory, including not only the ability to treat large irregular metal-molecule junctions with high nonequilibrium thermal distributions but perhaps also the ability to treat dispersive forces, bond breakage, and open-shell systems and to avoid large band lineup errors. New results are presented indicating that DFTB provides a useful depiction of simple gold-thiol interactions. Symmetry is implemented in DFTB, and the advantages it brings in terms of large savings of computational resources with significant increase in numerical stability are described. The power of DFTB is then harnessed to allow the use of gDFTB as a real-time tool to discover the nature of the forces that control inelastic charge transport through molecules and the role of molecular symmetry in determining both elastic and inelastic transport. Future directions for the development of the method are discussed.

dc.publisherAmerican Chemical Society
dc.relation.urihttp://pubs.acs.org/cgi-bin/article.cgi/jpcafh/2007/111/i26/pdf/jp070598y.pdf
dc.titleThe green's function density functional tight-binding (gDFTB) method for molecular electronic conduction
dc.typeJournal Article
dcterms.source.volume111
dcterms.source.number26
dcterms.source.monthjul
dcterms.source.startPage5692
dcterms.source.endPage5702
dcterms.source.titleJournal of Physical Chemistry A
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curtin.identifierEPR-2234
curtin.accessStatusFulltext not available
curtin.facultyDepartment of Applied Chemistry
curtin.facultyDivision of Engineering, Science and Computing
curtin.facultyFaculty of Science


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