Restoration mechanism of photocatalytic H2O2/H2 production stability of ZnO/ZnS S-scheme heterojunction

被引:0
作者
Hu, Jindou [1 ]
Zhu, Miaomiao [1 ]
Ghazi, Zahid Ali [2 ]
Cao, Yali [1 ]
机构
[1] Xinjiang Univ, Coll Chem, State Key Lab Chem & Utilizat Carbon Based Energy, Urumqi 830017, Xinjiang, Peoples R China
[2] Univ Peshawar, Natl Ctr Excellence Phys Chem, Peshawar, Pakistan
来源
CHINESE JOURNAL OF CATALYSIS | 2025年 / 71卷
关键词
In-situ; Heterojunction; Hydrogen peroxide; Hydrogen production; HYDROGEN-PEROXIDE; HETEROSTRUCTURE; ZNS;
D O I
10.1016/S1872-2067(24)60240-8
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Sulfide photocatalysts are one of the widely recognized excellent photocatalysts. However, the stability of sulfide photocatalysts has always been a challenging problem in the field of photocatalysis. Herein, an in-situ oxidation strategy was designed to construct ZnO/ZnS homologous S-scheme catalysts and solve its poor stability problem. The results indicates that the obtained ZnO/ZnS homologous heterojunction not only has dual-function performance, but also has good recover ability in photocatalytic performance: the photocatalytic H2O2 yield can reach 517.32 mu mol g-1 (in pure water) after two hours, the photocatalytic H2 yield is 140.45 mmol g-1 in 5 h, which were 2.2 times and 84 times than that of the ZnS, respectively. Excitingly, the recovery rate of photocatalytic performance can be increased from 33.3% to 97.2%. The excellent photocatalytic performance is attributed to that the obtained homologous heterojunction can not only broaden the light absorption capacity (370-600 nm), but also facilitate the separation and transfer of photogenerated electrons. The high recovery rate of photocatalytic stability is due to the re-generation of zinc oxide in the oxidation process, which makes the photocatalyst return to the original homologous heterojunction structure. Meanwhile, experimental results, density functional theory calculations and Kelvin probe force microscopy indicate that the photo-induced carrier transfer pathway follows the S-scheme heterojunction mechanism. This work provides new ideas and breakthroughs for the design and construction of sulfide photocatalysts with excellent photocatalytic stability. (c) 2025, Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:319 / 329
页数:11
相关论文
共 68 条
[1]   ZnIn2S4 /MOF S-scheme photocatalyst for H2 production and its femtosecond transient absorption mechanism [J].
Cai, Jiajie ;
Liu, Bowen ;
Zhang, Shumin ;
Wang, Linxi ;
Wu, Zhen ;
Zhang, Jianjun ;
Cheng, Bei .
JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2024, 197 :183-193
[2]   Phosphorus-doped porous carbon nitride for efficient sole production of hydrogen peroxide via photocatalytic water splitting with a two-channel pathway [J].
Cao, Jingjing ;
Wang, Hui ;
Zhao, Yajie ;
Liu, Yan ;
Wu, Qingyao ;
Huang, Hui ;
Shao, Mingwang ;
Liu, Yang ;
Kang, Zhenhui .
JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (07) :3701-3707
[3]   ZnO/ZnS photocatalyst from thermal treatment of ZnS: Influence of calcination temperature on development of heterojunction structure and photocatalytic performance [J].
Chankhanittha, Tammanoon ;
Watcharakitti, Jidapa ;
Piyavarakorn, Voranan ;
Johnson, Benjamin ;
Bushby, Richard J. ;
Chuaicham, Chitiphon ;
Sasaki, Keiko ;
Nijpanich, Supinya ;
Nakajima, Hideki ;
Chanlek, Narong ;
Nanan, Suwat .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2023, 179
[4]   Chalcogenide-based S-scheme heterojunction photocatalysts [J].
Chen, Chunguang ;
Zhang, Jinfeng ;
Chu, Hailiang ;
Sun, Lixian ;
Dawson, Graham ;
Dai, Kai .
CHINESE JOURNAL OF CATALYSIS, 2024, 63 :81-108
[5]   Photocatalytic H2O2 production using Ti3C2 MXene as a non-noble metal cocatalyst [J].
Chen, Yiming ;
Gu, Wenquan ;
Tan, Li ;
Ao, Zhimin ;
An, Taicheng ;
Wang, Shaobin .
APPLIED CATALYSIS A-GENERAL, 2021, 618
[6]   Photocatalytic Hydrogen Peroxide Production through Functionalized Semiconductive Metal-Organic Frameworks [J].
Choi, Ji Yong ;
Check, Brianna ;
Fang, Xiaoyu ;
Blum, Samson ;
Pham, Hoai T. B. ;
Tayman, Kyle ;
Park, Jihye .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2024, 146 (16) :11319-11327
[7]   Harvesting Vibration Energy to Produce Hydrogen Peroxide with Bi3TiNbO9 Nanosheets through a Water Oxidation Dominated Dual-Channel Pathway [J].
Cui, Yongfei ;
Wang, Fenghui ;
Yuan, Panpan ;
Liu, Wei ;
Fang, Biyun ;
Wang, Zhuo ;
Pu, Yongping .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2024, 12 (09) :3595-3607
[8]   From Wurtzite Nanoplatelets to Zinc Blende Nanorods: Simultaneous Control of Shape and Phase in Ultrathin ZnS Nanocrystals [J].
Dai, Liwei ;
Lesyuk, Rostyslav ;
Karpulevich, Anastasia ;
Torche, Abderrezak ;
Bester, Gabriel ;
Klinke, Christian .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2019, 10 (14) :3828-3835
[9]   Construction of a P, N Co-Doped Nanocarbon-Embedded g-C3N4 Hollow Sphere Nanoreactor for the Efficient Photocatalytic Production of Hydrogen Peroxide [J].
Dang, Xueming ;
Cui, Xin ;
Zhang, Haiguang ;
Chen, Xiaoming ;
Zhao, Huimin .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2023, 11 (35) :13096-13107
[10]   Controllable graphitization degree of carbon foam bulk toward electromagnetic wave attenuation loss behavior [J].
Deng, Weibin ;
Li, Tiehu ;
Li, Hao ;
Liu, Xin ;
Dang, Alei ;
Liu, Yifei ;
Wu, Hongjing .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2022, 618 :129-140