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dc.contributor.author ESCOBAR ALARCON, LUIS
dc.contributor.author Solís Casados, Dora Alicia
dc.contributor.author ESQUIVEL ESCALANTE, KAREN
dc.contributor.author MARTINEZ CHAVEZ, LUIS ALEJANDRO
dc.contributor.author VELAZQUEZ CASTILLO, RENE
dc.contributor.author HARO PONIATOWSKI, EMMANUEL
dc.creator ESCOBAR ALARCON, LUIS; 19586
dc.creator Solís Casados, Dora Alicia; 121120
dc.creator ESQUIVEL ESCALANTE, KAREN; 176214
dc.creator MARTINEZ CHAVEZ, LUIS ALEJANDRO; 815785
dc.creator VELAZQUEZ CASTILLO, RENE; 502093
dc.creator HARO PONIATOWSKI, EMMANUEL; 5354
dc.date.accessioned 2022-02-16T03:08:57Z
dc.date.available 2022-02-16T03:08:57Z
dc.date.issued 2021-10-03
dc.identifier.issn 1432-0630
dc.identifier.uri http://hdl.handle.net/20.500.11799/112303
dc.description Articulo relacionado con la caracterizacion de materiales es
dc.description.abstract A crossed beam pulsed laser deposition confguration was used to prepare nanocomposites Bi/TiO2 thin flms on two different substrates. The multilayered system was formed by depositing TiO2 and Bi layers alternately. In order to embed the Bi nanostructures in TiO2, the subsequent TiO2 layers were synthesized using a constant number of laser pulses (3000) corresponding to a thickness of approximately 21 nm. The Bi nanostructures were deposited on the TiO2 layers alternately by irradiating the Bi target with 30, 100, 200, and 300 laser pulses. In this way, the Bi nanostructures were embedded inside the TiO2 matrix. A total of 8 samples with bismuth and one reference, with TiO2 only, were produced. Transmission Electron Microscopy (TEM) showed that nearly spherical nanoparticles (NPs) were obtained at lower number of pulses, whereas at 300 pulses a quasi-percolated nanostructured Bi flm was obtained. X-Ray Photoelectron Spectroscopy (XPS) revealed that the TiO2 layers were not afected due to the bismuth presence. Raman Spectroscopy showed vibrational features characteristic of the rutile phase for the titania layer. The Raman spectrum of the multilayer prepared using 300 laser pulses on the bismuth, suggests that the Bi layer is formed by a mixture of metallic Bi, and α-Bi2O3. The Ultraviolet–Visible Spectroscopy reveals that no substantial changes are presented in the transmittance spectra indicating similar optical properties of the diferent deposits. Finally, the photoluminescence emission spectra indicate that the substrate position in the deposition chamber afects the electronic structure of the material. es
dc.description.sponsorship A. Martínez-Chávez thanks CONACyT for the scholarship granted (No. 815785). K. Esquivel and L. Escobar thank the Engineering Faculty-UAQ for the fnancial support granted through the Attention to national problems fund and the FONDEC-UAQ-2021. We greatly appreciate the collaboration of R. Basurto in performing the XPS measurements. es
dc.language.iso eng es
dc.publisher Springer es
dc.rights openAccess es
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0 es
dc.subject nanocomposites es
dc.subject Titanium oxide es
dc.subject laser ablation es
dc.subject multilayer es
dc.subject.classification BIOLOGÍA Y QUÍMICA es
dc.title Nanocomposite Bi/TiO2 multilayer thin flms deposited by a crossed beam laser ablation confguration es
dc.type Artículo es
dc.provenance Científica es
dc.road Verde es
dc.organismo Química es
dc.ambito Nacional es
dc.cve.CenCos 20403 es
dc.type.conacyt article
dc.identificator 2
dc.relation.vol 127


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  • Título
  • Nanocomposite Bi/TiO2 multilayer thin flms deposited by a crossed beam laser ablation confguration
  • Autor
  • ESCOBAR ALARCON, LUIS
  • Solís Casados, Dora Alicia
  • ESQUIVEL ESCALANTE, KAREN
  • MARTINEZ CHAVEZ, LUIS ALEJANDRO
  • VELAZQUEZ CASTILLO, RENE
  • HARO PONIATOWSKI, EMMANUEL
  • Fecha de publicación
  • 2021-10-03
  • Editor
  • Springer
  • Tipo de documento
  • Artículo
  • Palabras clave
  • nanocomposites
  • Titanium oxide
  • laser ablation
  • multilayer
  • Los documentos depositados en el Repositorio Institucional de la Universidad Autónoma del Estado de México se encuentran a disposición en Acceso Abierto bajo la licencia Creative Commons: Atribución-NoComercial-SinDerivar 4.0 Internacional (CC BY-NC-ND 4.0)

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