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Synthesis of TiO(2)–ZnS nanocomposites via sacrificial template sulfidation and their ethanol gas-sensing performance

TiO(2)–ZnS core–shell composite nanorods were synthesized by using ZnO as a sacrificial shell layer in a hydrothermal reaction. ZnO thin films of different thicknesses were sputter-deposited onto the surfaces of TiO(2) nanorods as templates for hydrothermally synthesizing TiO(2)–ZnS core–shell nanor...

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Detalles Bibliográficos
Autores principales: Liang, Yuan-Chang, Xu, Nian-Cih
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9081378/
https://www.ncbi.nlm.nih.gov/pubmed/35539706
http://dx.doi.org/10.1039/c8ra04157a
Descripción
Sumario:TiO(2)–ZnS core–shell composite nanorods were synthesized by using ZnO as a sacrificial shell layer in a hydrothermal reaction. ZnO thin films of different thicknesses were sputter-deposited onto the surfaces of TiO(2) nanorods as templates for hydrothermally synthesizing TiO(2)–ZnS core–shell nanorods. Structural analysis revealed that crystalline TiO(2)–ZnS composite nanorods were formed without any residual ZnO phase after hydrothermal sulfidation in the composite nanorods. The thickness of the ZnO sacrificial shell layer affected the surface morphology and sulfur-related surface defect density in hydrothermally grown ZnS crystallites of TiO(2)–ZnS composite nanorods. Due to the distinctive core–shell heterostructure and the heterojunction between the TiO(2) core and the ZnS shell, TiO(2)–ZnS core–shell nanorods exhibited ethanol gas-sensing performance superior to that of pristine TiO(2) nanorods. An optimal ZnO sacrificial shell layer thickness of approximately 60 nm was found to enable the synthesis of TiO(2)–ZnS composite nanorods with satisfactory gas-sensing performance through sulfidation. The results demonstrated that hydrothermally derived TiO(2)–ZnS core–shell composite nanorods with a sputter-deposited ZnO sacrificial shell layer are promising for applications in gas sensors.