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dc.contributor.authorGonzález, Rafael I. [Univ Mayor, Fac Ciencias, Ctr Nanotecnol Aplicada, Santiago, Chile]es_CL
dc.contributor.authorValencia, Felipe J. [Univ Mayor, Fac Ciencias, Nucl Matemat Fis & Estadit]es_CL
dc.contributor.authorHernández-Vázquez, E. E.es_CL
dc.contributor.authorBringa, E. M.es_CL
dc.contributor.authorMoran-López, J. L.es_CL
dc.contributor.authorRogan, J.es_CL
dc.contributor.authorMuñoz, F.es_CL
dc.date.accessioned2020-04-08T14:11:55Z
dc.date.accessioned2020-04-13T18:12:42Z
dc.date.available2020-04-08T14:11:55Z
dc.date.available2020-04-13T18:12:42Z
dc.date.issued2018es_CL
dc.identifier.citationValencia, F. J., Hernandez-Vazquez, E. E., Bringa, E. M., Moran-Lopez, J. L., Rogan, J., González, R. I., & Munoz, F. (2018). Growth of Ni nanoclusters on irradiated graphene: a molecular dynamics study. Physical Chemistry Chemical Physics, 20(24), 16347-16353.es_CL
dc.identifier.issn1463-9076es_CL
dc.identifier.issn1463-9084es_CL
dc.identifier.urihttps://doi.org/10.1039/c7cp08642ces_CL
dc.identifier.urihttp://repositorio.umayor.cl/xmlui/handle/sibum/6171
dc.description.abstractWe studied the soft landing of Ni atoms on a previously damaged graphene sheet by means of molecular dynamics simulations. We found a monotonic decrease of the cluster frequency as a function of its size, but few big clusters comprise an appreciable fraction of the total number of Ni atoms. The aggregation of Ni atoms is also modeled by means of a simple phenomenological model. The results are in clear contrast with the case of hard or energetic landing of metal atoms, where there is a tendency to form mono-disperse metal clusters. This behavior is attributed to the high diffusion of unattached Ni atoms, together with vacancies acting as capture centers. The findings of this work show that a simple study of the energetics of the system is not enough in the soft landing regime, where it is unavoidable to also consider the growth process of metal clusters.es_CL
dc.description.sponsorshipFondecyt (Chile)Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT)CONICYT FONDECYT [1150806, 1160639]; Financiamiento Basal para Centros Cientficos y Tecnologicos de Excelencia (Chile) through the Center for Development of Nanoscience and Nanotechnology (CEDENNA) [FB0807]; CONACYT (Mexico)Consejo Nacional de Ciencia y Tecnologia (CONACyT) [288363]; NLHPC [ECM-02]; [PICT2014-0096]; [SeCTyP-UNCuyo M025]es_CL
dc.description.sponsorshipSupport from the following sources is acknowledged: Fondecyt (Chile) under contracts 1150806, 1160639 and Financiamiento Basal para Centros Cientficos y Tecnologicos de Excelencia (Chile) through the Center for Development of Nanoscience and Nanotechnology (CEDENNA, Contract FB0807). E. E. H.-V. acknowledges a fellowship from CONACYT, contract 288363 (Mexico). This research was partially supported by the supercomputing infrastructure of the NLHPC (ECM-02). E. M. Bringa is thankful for the support from grants PICT2014-0096 and SeCTyP-UNCuyo M025.es_CL
dc.language.isoenes_CL
dc.publisherROYAL SOC CHEMISTRYes_CL
dc.rightsAttribution-NonCommercial-NoDerivs 3.0 Chile
dc.sourcePhys. Chem. Chem. Phys., JUN 2018. 20(24): p. 16347-16353
dc.subjectChemistry, Physical; Physics, Atomic, Molecular & Chemicales_CL
dc.titleGrowth of Ni nanoclusters on irradiated graphene: a molecular dynamics studyes_CL
dc.typeArtículoes_CL
umayor.facultadCIENCIASes_CL
umayor.politicas.sherpa/romeoRoMEO yellow journal (Puede archivar el pre-print (ie la versión previa a la revisión por pares). Disponible en: http://sherpa.ac.uk/romeo/index.phpes_CL
umayor.indexadoWOS:000436032900004es_CL
umayor.indexadoPMID: 29683154es_CL
dc.identifier.doiDOI: 10.1039/c7cp08642ces_CL]
umayor.indicadores.wos-(cuartil)Q2es_CL
umayor.indicadores.scopus-(scimago-sjr)SCIMAGO/ INDICE H: 199 Hes_CL


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