Artículo
Electrophoretic deposition of ZnO nanostructures: Au nanoclusters on Si substrates induce self-assembled nanowire growth
Sandoval, Claudia; Marín Ramírez, Oscar Alonso
; Real, Silvina; Comedi, David Mario
; Tirado, Monica Cecilia
Fecha de publicación:
09/2014
Editorial:
Elsevier Science
Revista:
Materials Science And Engineering B: Solid State Materials For Advanced Technology
ISSN:
0921-5107
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
The present work reports the self-assembled growth of ZnO nanowires on silicon substrate with nanometer sized Au clusters using electrophoretic deposition technique at room temperature without a sacrificial template. A colloidal suspension of ≈5 nm sized ZnO nanoparticles dispersed in 2-propanol was used (nanoparticle bandgap of 3.47 eV as determined from absorbance measurements). The results show that the Au nanoclusters on the silicon substrate induce the self-assembly of the ZnO nanoparticles into vertically aligned ZnO nanowires. This effect is tentatively explained as being due to increased electric field intensities near the Au nanoclusters during the electrophoretic deposition. Photoluminescence measurements reveal the presence of quantum confined excitons and a relatively low concentration of deep defects in the nanowires. The electric field guided growth of semiconductor nanostructures at room temperature has great industrial potential as it minimizes production costs and enables the use of substrate materials not withstanding high temperatures.
Palabras clave:
Zno Nanowires
,
Electrophoretic Deposition
,
Photoluminescence
Archivos asociados
Licencia
Identificadores
Colecciones
Articulos(CCT - NOA SUR)
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - NOA SUR
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - NOA SUR
Citación
Sandoval, Claudia; Marín Ramírez, Oscar Alonso; Real, Silvina; Comedi, David Mario; Tirado, Monica Cecilia; Electrophoretic deposition of ZnO nanostructures: Au nanoclusters on Si substrates induce self-assembled nanowire growth; Elsevier Science; Materials Science And Engineering B: Solid State Materials For Advanced Technology; 187; 9-2014; 21-25
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