Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts

One of most efficient approaches to the development of advanced sunlight-driven photocatalysts is the creation of a heterojunction interface. In this study, we developed a Z-scheme zinc oxide/polyimide heterojunction photocatalyst (ZnO/PI), featuring one-dimensional (1D) ZnO nanowires that were grow...

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Published in:JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
Main Authors: Guo, Maode; Li, He; Lim, Ying Chin
Format: Article
Language:English
Published: SPRINGER 2025
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001412627800001
author Guo
Maode; Li
He; Lim
Ying Chin
spellingShingle Guo
Maode; Li
He; Lim
Ying Chin
Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
Engineering; Materials Science; Physics
author_facet Guo
Maode; Li
He; Lim
Ying Chin
author_sort Guo
spelling Guo, Maode; Li, He; Lim, Ying Chin
Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
English
Article
One of most efficient approaches to the development of advanced sunlight-driven photocatalysts is the creation of a heterojunction interface. In this study, we developed a Z-scheme zinc oxide/polyimide heterojunction photocatalyst (ZnO/PI), featuring one-dimensional (1D) ZnO nanowires that were grown on two-dimensional (2D) PI nanosheets by a low-temperature solid-state reaction. The ZnO/PI photocatalyst was designed to degrade tetracycline under simulated sunlight. The influence of the ZnO to PI mass ratio on the crystal structure, morphology, optical properties, and photoelectrochemical activity was analyzed using XRD, FESEM, HRTEM, UVDRS, BET, XPS, PL, and EIS. The FESEM analysis revealed a morphology transition from block-like structures to 2D sheet-like arrangement for PI upon compositing with ZnO. The optical property investigation showed pronounced light absorption in the visible region after growing ZnO on 2D PI. The 1:1 ZnO/PI showed significantly greater photocatalytic activity due to its strong light harvesting and photogenerated carrier separation efficiency, as well as synergistic interactions within the heterojunction as evidenced from HRTEM, EIS, and PL analysis. In addition, the ZnO/PI catalyst demonstrated consistent photocatalytic degradation efficiency over all four cycles. We proposed a Z-scheme carrier transfer pathway mechanism for the ZnO/PI. This study emphasizes on the connection between composition and photocatalytic performance, contributing to the current understanding of heterojunction photocatalysts as well as the potential applications of these materials in environmental remediation.
SPRINGER
0957-4522
1573-482X
2025
36
4
10.1007/s10854-025-14320-1
Engineering; Materials Science; Physics

WOS:001412627800001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001412627800001
title Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
title_short Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
title_full Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
title_fullStr Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
title_full_unstemmed Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
title_sort Structural, optical, and mechanistic insights into enhanced visible-light degradation of tetracycline using Z-scheme zinc oxide/polyimide heterojunction photocatalysts
container_title JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
language English
format Article
description One of most efficient approaches to the development of advanced sunlight-driven photocatalysts is the creation of a heterojunction interface. In this study, we developed a Z-scheme zinc oxide/polyimide heterojunction photocatalyst (ZnO/PI), featuring one-dimensional (1D) ZnO nanowires that were grown on two-dimensional (2D) PI nanosheets by a low-temperature solid-state reaction. The ZnO/PI photocatalyst was designed to degrade tetracycline under simulated sunlight. The influence of the ZnO to PI mass ratio on the crystal structure, morphology, optical properties, and photoelectrochemical activity was analyzed using XRD, FESEM, HRTEM, UVDRS, BET, XPS, PL, and EIS. The FESEM analysis revealed a morphology transition from block-like structures to 2D sheet-like arrangement for PI upon compositing with ZnO. The optical property investigation showed pronounced light absorption in the visible region after growing ZnO on 2D PI. The 1:1 ZnO/PI showed significantly greater photocatalytic activity due to its strong light harvesting and photogenerated carrier separation efficiency, as well as synergistic interactions within the heterojunction as evidenced from HRTEM, EIS, and PL analysis. In addition, the ZnO/PI catalyst demonstrated consistent photocatalytic degradation efficiency over all four cycles. We proposed a Z-scheme carrier transfer pathway mechanism for the ZnO/PI. This study emphasizes on the connection between composition and photocatalytic performance, contributing to the current understanding of heterojunction photocatalysts as well as the potential applications of these materials in environmental remediation.
publisher SPRINGER
issn 0957-4522
1573-482X
publishDate 2025
container_volume 36
container_issue 4
doi_str_mv 10.1007/s10854-025-14320-1
topic Engineering; Materials Science; Physics
topic_facet Engineering; Materials Science; Physics
accesstype
id WOS:001412627800001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001412627800001
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