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dc.contributor.authorSan-Miguel, Miguel A.
dc.contributor.authorda Silva, Edison
dc.contributor.authorZanetti, Sonia M.
dc.contributor.authorCilense, Mário
dc.contributor.authorFabbro, Maria T.
dc.contributor.authorGracia, Lourdes
dc.contributor.authorAndres, Juan
dc.contributor.authorLongo, Elson
dc.date.accessioned2016-06-09T09:22:44Z
dc.date.available2016-06-09T09:22:44Z
dc.date.issued2016-04
dc.identifier.citationSAN-MIGUEL, Miguel A., et al. In situ growth of Ag nanoparticles on α-Ag2WO4 under electron irradiation: probing the physical principles. Nanotechnology, 2016, vol. 27, no 22, p. 225703.ca_CA
dc.identifier.urihttp://hdl.handle.net/10234/160498
dc.description.abstractExploiting the plasmonic behavior of Ag nanoparticles grown on α-Ag2WO4 is a widely employed strategy to produce efficient photocatalysts, ozone sensors, and bactericides. However, a description of the atomic and electronic structure of the semiconductor sites irradiated by electrons is still not available. Such a description is of great importance to understand the mechanisms underlying these physical processes and to improve the design of silver nanoparticles to enhance their activities. Motivated by this, we studied the growth of silver nanoparticles to investigate this novel class of phenomena using both transmission electron microscopy and field emission scanning electron microscopy. A theoretical framework based on density functional theory calculations (DFT), together with experimental analysis and measurements, were developed to examine the changes in the local geometrical and electronic structure of the materials. The physical principles for the formation of Ag nanoparticles on α-Ag2WO4 by electron beam irradiation are described. Quantum mechanical calculations based on DFT show that the (001) of α-Ag2WO4 displays Ag atoms with different coordination numbers. Some of them are able to diffuse out of the surface with a very low energy barrier (less than 0.1 eV), thus, initiating the growth of metallic Ag nanostructures and leaving Ag vacancies in the bulk material. These processes increase the structural disorder of α-Ag2WO4 as well as its electrical resistance as observed in the experimental measurements.ca_CA
dc.description.sponsorShipThe authors are grateful to Generalitat Valenciana (Spain) for PrometeoII/2014/022 and ACOMP/2014/270 projects, Ministerio de Economia y Competitividad (Spain), CTQ2012-36253-C03-02, and to the Spanish Brazilian Program (PHB2009-0065-PC), CAPES (203038 009607/2013- 56 088/2013), INCTMN (2008/57872-1), FAPESP (2013/ 07296-2; 2012/14468-1; 2010/16970-0) and CNPq (147001/2013-7; 573636/2008-7) for financially supporting this research. Most of the calculations were performed using IFGW-UNICAMP computer facilities and the National Center for High Performance Computing in São Paulo (CENAPAD- SP).ca_CA
dc.format.extent9 p.ca_CA
dc.format.mimetypeapplication/pdfca_CA
dc.language.isoengca_CA
dc.publisherIOP Publishing Ltdca_CA
dc.relation.isPartOfNanotechnology, 2016, vol. 27, no 22ca_CA
dc.rights© 2016 IOP Publishing Ltdca_CA
dc.rights.urihttp://rightsstatements.org/vocab/InC/1.0/*
dc.subjectα-Ag2WO4ca_CA
dc.subjectAg nanoparticlesca_CA
dc.subjecttransmission electron microscopyca_CA
dc.subjectdensity functional theoryca_CA
dc.subjectplasmonic effectca_CA
dc.titleIn situ growth of Ag nanoparticles on alpha-Ag2WO4 under electron irradiation: probing the physical principlesca_CA
dc.typeinfo:eu-repo/semantics/articleca_CA
dc.identifier.doihttp://dx.doi.org/10.1088/0957-4484/27/22/225703
dc.rights.accessRightsinfo:eu-repo/semantics/openAccessca_CA
dc.relation.publisherVersionhttp://iopscience.iop.org/article/10.1088/0957-4484/27/22/225703/metaca_CA
dc.type.versioninfo:eu-repo/semantics/acceptedVersionca_CA


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