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Authordc.contributor.authorDulic, Diana 
Authordc.contributor.authorRates, Alfredo 
Authordc.contributor.authorCastro, Edison 
Authordc.contributor.authorLabra Muñoz, Jacqueline 
Authordc.contributor.authorAravena, Daniel 
Authordc.contributor.authorEtcheverry Berrios, Álvaro 
Authordc.contributor.authorRiba López, Daniel 
Authordc.contributor.authorRuiz, Eliseo 
Authordc.contributor.authorAliaga Alcalde, Núria 
Authordc.contributor.authorSoler Jauma, Mónica 
Authordc.contributor.authorEchegoyen, Luis 
Authordc.contributor.authorvan der Zant, Herre S. J. 
Admission datedc.date.accessioned2020-05-22T23:24:18Z
Available datedc.date.available2020-05-22T23:24:18Z
Publication datedc.date.issued2020
Cita de ítemdc.identifier.citationJ. Phys. Chem. C 2020, 124, 2698−2704es_ES
Identifierdc.identifier.other10.1021/acs.jpcc.9b10166
Identifierdc.identifier.urihttps://repositorio.uchile.cl/handle/2250/174898
Abstractdc.description.abstractWe present experimental and theoretical studies of single-molecule conductance through nonplanar fullerocurcuminoid molecular dyads in ambient conditions using the mechanically controllable break junction technique. We show that molecular dyads with bare fullerenes form configurations with conductance features related to different transport channels within the molecules, as identified with filtering and clustering methods. The primary channel corresponds to charge transport through the methylthio-terminated backbone. Additional low-conductance channels involve one backbone side and the fullerene. In fullerenes with four additional equatorial diethyl malonate groups attached to them, the latter transport pathway is blocked. Density functional theory calculations corroborate the experimental observations. In combination with nonequilibrium green functions, the conductance values of the fullerocurcuminoid backbones are found to be similar to those of a planar curcuminoid molecule without a fullerene attached. In the nonplanar fullerocurcuminoid systems, the highest-conductance peak occurs partly through space, compensating for the charge delocalization loss present in the curcuminoid system.es_ES
Patrocinadordc.description.sponsorshipEuropean Commission (COST Action MOLSPIN) CA1S128 European Commission (EU RISE (DAFNEOX) project) SEP-210165479 Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT) CONICYT FONDECYT 1181080 1161775 1170524 Fondequip EQM140055 EQM180009 NLHPC ECM -02 MICIIN PGC2018-093863-B-C21 Maria de Maeztu Excellence grant MDM-2017-0767 Generalitat de Catalunya 2017SGR1289 2017SGR1277 Netherlands Organization for Scientific Research (NWO) Spanish Government M.AT2016-778S2-C2-1-R Severo Ochoa Program for Centers of Excellence in RD SEV-2015-0496 European Research Council (ERC) 724981 National Science Foundation (NSF) CHE-1801317 The Welch Foundation AH-0033es_ES
Lenguagedc.language.isoenes_ES
Publisherdc.publisherAmer Chemical Soces_ES
Type of licensedc.rightsAttribution-NonCommercial-NoDerivs 3.0 Chile*
Link to Licensedc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/3.0/cl/*
Sourcedc.sourceJournal of Physical Chemistry Ces_ES
Keywordsdc.subjectBasis-setses_ES
Keywordsdc.subjectConductancees_ES
Keywordsdc.subjectC-60es_ES
Keywordsdc.subjectDerivativeses_ES
Keywordsdc.subjectComplexeses_ES
Keywordsdc.subjectDensityes_ES
Títulodc.titleSingle-Molecule Transport of Fullerene-Based Curcuminoidses_ES
Document typedc.typeArtículo de revistaes_ES
dcterms.accessRightsdcterms.accessRightsAcceso Abierto
Catalogueruchile.catalogadorcrbes_ES
Indexationuchile.indexArtículo de publicación ISI
Indexationuchile.indexArtículo de publicación SCOPUS


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Attribution-NonCommercial-NoDerivs 3.0 Chile
Except where otherwise noted, this item's license is described as Attribution-NonCommercial-NoDerivs 3.0 Chile