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dc.creatorQuintero J.H.spa
dc.creatorMariño A.spa
dc.creatorŠiller L.spa
dc.creatorRestrepo-Parra E.spa
dc.creatorCaro-Lopera F.J.spa
dc.date.accessioned2017-05-12T16:05:57Z
dc.date.available2017-05-12T16:05:57Z
dc.date.created2017
dc.identifier.issn2578972
dc.identifier.urihttp://hdl.handle.net/11407/3151
dc.description.abstractGold nitride is important for potential applications, such as, to replace metallic gold in electronics, coatings, jewelry and micro-engineering. However, the experimental determination of crystalline structure is still controversial due to difficulties in the synthesis (it is difficult to obtain a sufficient amount). In this work gold nitride species are obtained at the 304 stainless steel substrates by using an arc pulsed - physical assisted plasma vapor deposition system. The pressure of nitrogen at the discharge time was varied between 3.5 at 8.0 mbar to increase the amount of gold nitride species in the sample. By X-ray diffraction, changes in the texture coefficient of (111) to (200) planes are observed, and increase of the micro strain, asymmetries and widening of the rocking curves shown. By the X-ray photoemission spectroscopy, the N 1s core levels observed at binding energies of 398.1 eV and 398.3 eV, are attributed to formation of gold nitride species. The rocking curves of gold nitride films are modeled by using a recent theory of shape and influential curves. From this modelling, a cubic crystalline structure of the gold nitride is proposed. © 2016 Elsevier B.V.eng
dc.language.isoeng
dc.publisherElsevier B.V.spa
dc.relation.isversionofhttp://www.sciencedirect.com/science/article/pii/S0257897216312154spa
dc.sourceScopusspa
dc.subjectAsymmetriesspa
dc.subjectGold nitridespa
dc.subjectInfluential curvesspa
dc.subjectRocking curvespa
dc.titleRocking curves of gold nitride species prepared by arc pulsed - physical assisted plasma vapor depositionspa
dc.typeArticleeng
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.contributor.affiliationQuintero, J.H., Materiales Nanoestructurados y Biomodelación, Universidad de Medellín, Colombiaspa
dc.contributor.affiliationMariño, A., Laboratorio de Superconductividad y Nuevos Materiales, Universidad Nacional de Colombia, Colombiaspa
dc.contributor.affiliationŠiller, L., School of Chemical Engineering and Advanced Materials, Newcastle University, Newcastle upon Tyne, United Kingdomspa
dc.contributor.affiliationRestrepo-Parra, E., Laboratorio de Física del Plasma, Universidad Nacional de Colombia, Colombiaspa
dc.contributor.affiliationCaro-Lopera, F.J., Materiales Nanoestructurados y Biomodelación, Universidad de Medellín, Colombiaspa
dc.identifier.doi10.1016/j.surfcoat.2016.11.081
dc.subject.keywordBinding energyeng
dc.subject.keywordCrystalline materialseng
dc.subject.keywordDepositioneng
dc.subject.keywordElectric dischargeseng
dc.subject.keywordGoldeng
dc.subject.keywordNitrideseng
dc.subject.keywordPhotoelectron spectroscopyeng
dc.subject.keywordStainless steeleng
dc.subject.keywordVapor depositioneng
dc.subject.keywordX ray diffractioneng
dc.subject.keywordAsymmetrieseng
dc.subject.keywordCrystalline structureeng
dc.subject.keywordExperimental determinationeng
dc.subject.keywordGold nitrideeng
dc.subject.keywordInfluential curveseng
dc.subject.keywordRocking curveseng
dc.subject.keywordVapor deposition systemseng
dc.subject.keywordX ray photoemission spectroscopyeng
dc.subject.keywordGold coatingseng
dc.relation.ispartofesSurface and Coatings Technologyspa
dc.type.driverinfo:eu-repo/semantics/article


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