Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater

This study synthesized core-shell zinc oxide@zinc sulfide nanorod arrays (ZnO@ZnS NRAs) using a hydrothermal process in a thioacetamide solution, with sulfidation temperatures ranging from 60 to 100 °C. An increased sulfidation temperature resulted in a higher ZnS fraction within the ZnO@ZnS NRAs. Z...

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Main Authors: Yu-Zhe Wu, Wenjea J. Tseng
Format: Article
Language:English
Published: Elsevier 2025-03-01
Series:Open Ceramics
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Online Access:http://www.sciencedirect.com/science/article/pii/S2666539525000239
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author Yu-Zhe Wu
Wenjea J. Tseng
author_facet Yu-Zhe Wu
Wenjea J. Tseng
author_sort Yu-Zhe Wu
collection DOAJ
description This study synthesized core-shell zinc oxide@zinc sulfide nanorod arrays (ZnO@ZnS NRAs) using a hydrothermal process in a thioacetamide solution, with sulfidation temperatures ranging from 60 to 100 °C. An increased sulfidation temperature resulted in a higher ZnS fraction within the ZnO@ZnS NRAs. ZnO@ZnS NRAs prepared at 70 °C, with a ZnS ratio of approximately 70:30 by weight, exhibited the highest photocurrent density of 0.22 mA·cm−2 under xenon-lamp irradiation at a bias voltage of 1.5 V (vs. Ag/AgCl). X-ray photoelectron spectroscopy, photoluminescence, and electron paramagnetic resonance analyses confirmed the presence of vacancy defects, which are believed to promote the separation of photoinduced charge carriers, thereby enhancing carrier density. The increased photocurrent facilitated the efficient photodegradation of methylene blue dye in aqueous solutions, following Langmuir-Hinshelwood kinetics for heterogeneous catalysis. The first-order rate constant for the ZnO@ZnS NRAs treated at 70 °C was double that of the pristine ZnO counterpart. The band alignment at the ZnO-ZnS interface, combined with effective electron-hole separation, contributes to the enhanced photoelectrochemical and photocatalytic activity of the ZnO@ZnS NRAs.
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spelling doaj-art-bc8e905f21954c77bf291b07a779f8922025-08-20T03:00:08ZengElsevierOpen Ceramics2666-53952025-03-012110075610.1016/j.oceram.2025.100756Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewaterYu-Zhe Wu0Wenjea J. Tseng1Department of Materials Science and Engineering, National Chung Hsing University, Taichung 402, TaiwanCorresponding author.; Department of Materials Science and Engineering, National Chung Hsing University, Taichung 402, TaiwanThis study synthesized core-shell zinc oxide@zinc sulfide nanorod arrays (ZnO@ZnS NRAs) using a hydrothermal process in a thioacetamide solution, with sulfidation temperatures ranging from 60 to 100 °C. An increased sulfidation temperature resulted in a higher ZnS fraction within the ZnO@ZnS NRAs. ZnO@ZnS NRAs prepared at 70 °C, with a ZnS ratio of approximately 70:30 by weight, exhibited the highest photocurrent density of 0.22 mA·cm−2 under xenon-lamp irradiation at a bias voltage of 1.5 V (vs. Ag/AgCl). X-ray photoelectron spectroscopy, photoluminescence, and electron paramagnetic resonance analyses confirmed the presence of vacancy defects, which are believed to promote the separation of photoinduced charge carriers, thereby enhancing carrier density. The increased photocurrent facilitated the efficient photodegradation of methylene blue dye in aqueous solutions, following Langmuir-Hinshelwood kinetics for heterogeneous catalysis. The first-order rate constant for the ZnO@ZnS NRAs treated at 70 °C was double that of the pristine ZnO counterpart. The band alignment at the ZnO-ZnS interface, combined with effective electron-hole separation, contributes to the enhanced photoelectrochemical and photocatalytic activity of the ZnO@ZnS NRAs.http://www.sciencedirect.com/science/article/pii/S2666539525000239ZnO@ZnS nanorod arrayCore shellPhotocurrentVacancyDye photodegradation
spellingShingle Yu-Zhe Wu
Wenjea J. Tseng
Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
Open Ceramics
ZnO@ZnS nanorod array
Core shell
Photocurrent
Vacancy
Dye photodegradation
title Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
title_full Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
title_fullStr Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
title_full_unstemmed Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
title_short Preparation of ZnO@ZnS core-shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
title_sort preparation of zno zns core shell nanorod arrays with enhanced photocurrent for removal of methylene blue dyes in wastewater
topic ZnO@ZnS nanorod array
Core shell
Photocurrent
Vacancy
Dye photodegradation
url http://www.sciencedirect.com/science/article/pii/S2666539525000239
work_keys_str_mv AT yuzhewu preparationofznoznscoreshellnanorodarrayswithenhancedphotocurrentforremovalofmethylenebluedyesinwastewater
AT wenjeajtseng preparationofznoznscoreshellnanorodarrayswithenhancedphotocurrentforremovalofmethylenebluedyesinwastewater