Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications

The hydrothermally synthesized rutile-TiO2 nanorods were spin-coated with anatase-TiO2 film and decorated with Ag nanoparticles via sputtering to construct Ag nanoparticles decorated heterophase TiO2 composites. By extending the sputtering duration to altering the Ag content in the TiO2 composition,...

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Main Authors: Yuan-Chang Liang, Chih-Chen Kuo
Format: Article
Language:English
Published: Elsevier 2024-06-01
Series:Journal of Science: Advanced Materials and Devices
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2468217924000273
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author Yuan-Chang Liang
Chih-Chen Kuo
author_facet Yuan-Chang Liang
Chih-Chen Kuo
author_sort Yuan-Chang Liang
collection DOAJ
description The hydrothermally synthesized rutile-TiO2 nanorods were spin-coated with anatase-TiO2 film and decorated with Ag nanoparticles via sputtering to construct Ag nanoparticles decorated heterophase TiO2 composites. By extending the sputtering duration to altering the Ag content in the TiO2 composition, we aim to investigate the correlation between the microstructures and the dual function of photoelectrochemical photocatalytic and gas-sensing performances for environmental applications. The Ag nanoparticles on the anatase/rutile-TiO2 composites facilitate photon absorption through surface plasmon resonance. Also, Ag nanoparticles contribute the hot electron to enhance the synergy effect in the anatase-TiO2/rutile-TiO2 to prevent recombination of photoinduced carriers under irradiation, thereby strengthening the photocatalytic characteristics. Furthermore, the gas sensing performance is improved due to the electronic and chemical sensitization effects caused by the Ag nanoparticles on the anatase-TiO2/rutile-TiO2 composite. This study demonstrates that tuning Ag nanoparticle content in the anatase/rutile-TiO2 composites is a promising material design strategy for use in highly efficient photoexcited and gas-sensing devices. The proposed Ag nanoparticles decorated polymorphic TiO2 composite nanorods are suitable for eliminating organic pollutants in water and ethanol pollution monitoring.
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spelling doaj.art-b9e3d2553ad14717825890cc840a3e8c2024-03-09T09:29:13ZengElsevierJournal of Science: Advanced Materials and Devices2468-21792024-06-0192100696Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applicationsYuan-Chang Liang0Chih-Chen Kuo1Corresponding author.; Department of Optoelectronics and Materials Technology, National Taiwan Ocean University, Keelung, 20224, TaiwanDepartment of Optoelectronics and Materials Technology, National Taiwan Ocean University, Keelung, 20224, TaiwanThe hydrothermally synthesized rutile-TiO2 nanorods were spin-coated with anatase-TiO2 film and decorated with Ag nanoparticles via sputtering to construct Ag nanoparticles decorated heterophase TiO2 composites. By extending the sputtering duration to altering the Ag content in the TiO2 composition, we aim to investigate the correlation between the microstructures and the dual function of photoelectrochemical photocatalytic and gas-sensing performances for environmental applications. The Ag nanoparticles on the anatase/rutile-TiO2 composites facilitate photon absorption through surface plasmon resonance. Also, Ag nanoparticles contribute the hot electron to enhance the synergy effect in the anatase-TiO2/rutile-TiO2 to prevent recombination of photoinduced carriers under irradiation, thereby strengthening the photocatalytic characteristics. Furthermore, the gas sensing performance is improved due to the electronic and chemical sensitization effects caused by the Ag nanoparticles on the anatase-TiO2/rutile-TiO2 composite. This study demonstrates that tuning Ag nanoparticle content in the anatase/rutile-TiO2 composites is a promising material design strategy for use in highly efficient photoexcited and gas-sensing devices. The proposed Ag nanoparticles decorated polymorphic TiO2 composite nanorods are suitable for eliminating organic pollutants in water and ethanol pollution monitoring.http://www.sciencedirect.com/science/article/pii/S2468217924000273SynthesisCompositeMicrostructuresFunctionPhotocatalysts
spellingShingle Yuan-Chang Liang
Chih-Chen Kuo
Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications
Journal of Science: Advanced Materials and Devices
Synthesis
Composite
Microstructures
Function
Photocatalysts
title Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications
title_full Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications
title_fullStr Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications
title_full_unstemmed Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications
title_short Enhanced dual function of Ag nanoparticles decorated one-dimensional polymorphic TiO2 composites for sustainable environmental applications
title_sort enhanced dual function of ag nanoparticles decorated one dimensional polymorphic tio2 composites for sustainable environmental applications
topic Synthesis
Composite
Microstructures
Function
Photocatalysts
url http://www.sciencedirect.com/science/article/pii/S2468217924000273
work_keys_str_mv AT yuanchangliang enhanceddualfunctionofagnanoparticlesdecoratedonedimensionalpolymorphictio2compositesforsustainableenvironmentalapplications
AT chihchenkuo enhanceddualfunctionofagnanoparticlesdecoratedonedimensionalpolymorphictio2compositesforsustainableenvironmentalapplications