Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis

Zinc oxide (ZnO)-based photocatalysis has great potential in wastewater treatment, but its photocatalytic performance suffers from the limitation of low-wavelength photon absorption. Herein, a near-infrared-responsive photocatalyst is developed to tackle this challenge, which is composed of Prussian...

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Main Authors: Fatima, Hira, Azhar, M.R., Khiadani, M., Zhong, Yijun, Wang, Wei, Su, Chao, Shao, Zongping
Format: Journal Article
Language:English
Published: ELSEVIER SCI LTD 2022
Subjects:
Online Access:http://purl.org/au-research/grants/arc/DP200103315
http://hdl.handle.net/20.500.11937/90875
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author Fatima, Hira
Azhar, M.R.
Khiadani, M.
Zhong, Yijun
Wang, Wei
Su, Chao
Shao, Zongping
author_facet Fatima, Hira
Azhar, M.R.
Khiadani, M.
Zhong, Yijun
Wang, Wei
Su, Chao
Shao, Zongping
author_sort Fatima, Hira
building Curtin Institutional Repository
collection Online Access
description Zinc oxide (ZnO)-based photocatalysis has great potential in wastewater treatment, but its photocatalytic performance suffers from the limitation of low-wavelength photon absorption. Herein, a near-infrared-responsive photocatalyst is developed to tackle this challenge, which is composed of Prussian blue (PB) dye conjugated iron oxide-zinc oxide hybrid nanoparticles (Fe3O4@PB@ZnO) with spherical morphology (∼14 nm). Fe3O4@PB@ZnO shows a higher-wavelength absorbance region centered at 781 nm as compared with PB-free Fe3O4-ZnO composite (Fe3O4@ZnO, 494 nm) and pristine ZnO (361 nm). The inclusion of a charge transfer band (FeII-CN-FeIII) after the conjugation of PB is responsible for such a profound absorbance shift. A comparative study of three samples as potential photocatalysts is performed in terms of the methylene blue degradation, which is found to be in an order of Fe3O4@PB@ZnO ˃ Fe3O4@ZnO ˃ ZnO. The enhanced photocatalysis rate of Fe3O4@PB@ZnO is credited to the lower bandgap of 1.2 eV from the presence of PB with low bandgap, retarded the recombination rate of electron-hole pair to produce enough reactive oxygen species from the rich surface vacancies and hole scavenging properties of PB. A plausible degradation mechanism of photocatalysis is proposed, revealing the singlet oxygen as the central point of enhanced performance.
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institution Curtin University Malaysia
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language English
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spelling curtin-20.500.11937-908752024-02-06T03:30:29Z Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis Fatima, Hira Azhar, M.R. Khiadani, M. Zhong, Yijun Wang, Wei Su, Chao Shao, Zongping Science & Technology Physical Sciences Technology Chemistry, Physical Energy & Fuels Materials Science, Multidisciplinary Chemistry Materials Science Iron oxide-zinc oxide nanoparticles Near-infrared-responsive Photocatalyst Photocatalytic degradation ENHANCED PHOTOCATALYSIS CHARGE-CARRIERS DEGRADATION UV PERFORMANCE DYES HETEROSTRUCTURES NANOSTRUCTURES MECHANISMS GENERATION Zinc oxide (ZnO)-based photocatalysis has great potential in wastewater treatment, but its photocatalytic performance suffers from the limitation of low-wavelength photon absorption. Herein, a near-infrared-responsive photocatalyst is developed to tackle this challenge, which is composed of Prussian blue (PB) dye conjugated iron oxide-zinc oxide hybrid nanoparticles (Fe3O4@PB@ZnO) with spherical morphology (∼14 nm). Fe3O4@PB@ZnO shows a higher-wavelength absorbance region centered at 781 nm as compared with PB-free Fe3O4-ZnO composite (Fe3O4@ZnO, 494 nm) and pristine ZnO (361 nm). The inclusion of a charge transfer band (FeII-CN-FeIII) after the conjugation of PB is responsible for such a profound absorbance shift. A comparative study of three samples as potential photocatalysts is performed in terms of the methylene blue degradation, which is found to be in an order of Fe3O4@PB@ZnO ˃ Fe3O4@ZnO ˃ ZnO. The enhanced photocatalysis rate of Fe3O4@PB@ZnO is credited to the lower bandgap of 1.2 eV from the presence of PB with low bandgap, retarded the recombination rate of electron-hole pair to produce enough reactive oxygen species from the rich surface vacancies and hole scavenging properties of PB. A plausible degradation mechanism of photocatalysis is proposed, revealing the singlet oxygen as the central point of enhanced performance. 2022 Journal Article http://hdl.handle.net/20.500.11937/90875 10.1016/j.mtener.2021.100895 English http://purl.org/au-research/grants/arc/DP200103315 http://purl.org/au-research/grants/arc/DP200103332 ELSEVIER SCI LTD restricted
spellingShingle Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Energy & Fuels
Materials Science, Multidisciplinary
Chemistry
Materials Science
Iron oxide-zinc oxide nanoparticles
Near-infrared-responsive
Photocatalyst
Photocatalytic degradation
ENHANCED PHOTOCATALYSIS
CHARGE-CARRIERS
DEGRADATION
UV
PERFORMANCE
DYES
HETEROSTRUCTURES
NANOSTRUCTURES
MECHANISMS
GENERATION
Fatima, Hira
Azhar, M.R.
Khiadani, M.
Zhong, Yijun
Wang, Wei
Su, Chao
Shao, Zongping
Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis
title Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis
title_full Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis
title_fullStr Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis
title_full_unstemmed Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis
title_short Prussian blue-conjugated ZnO nanoparticles for near-infrared light-responsive photocatalysis
title_sort prussian blue-conjugated zno nanoparticles for near-infrared light-responsive photocatalysis
topic Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Energy & Fuels
Materials Science, Multidisciplinary
Chemistry
Materials Science
Iron oxide-zinc oxide nanoparticles
Near-infrared-responsive
Photocatalyst
Photocatalytic degradation
ENHANCED PHOTOCATALYSIS
CHARGE-CARRIERS
DEGRADATION
UV
PERFORMANCE
DYES
HETEROSTRUCTURES
NANOSTRUCTURES
MECHANISMS
GENERATION
url http://purl.org/au-research/grants/arc/DP200103315
http://purl.org/au-research/grants/arc/DP200103315
http://hdl.handle.net/20.500.11937/90875