Spatially separated catalytic sites supplied with the CdS-MoS2-In2O3 ternary dumbbell S-scheme heterojunction for enhanced photocatalytic hydrogen production

被引:60
作者
Zhang, Lijun [1 ,2 ]
Jiang, Xudong [1 ]
Jin, Zhiliang [1 ]
Tsubaki, Noritatsu [2 ]
机构
[1] North Minzu Univ, Sch Chem & Chem Engn, Yinchuan 750021, Ningxia, Peoples R China
[2] Univ Toyama, Grad Sch Engn, Dept Appl Chem, Gofuku 3190, Toyama 9308555, Japan
关键词
CDS NANORODS; SHELL; WATER; EVOLUTION; H-2; NANOSHEETS; OXIDATION; SULFIDE; ROBUST; GROWTH;
D O I
10.1039/d2ta00839d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Inspired by natural photosynthesis, the development of high-efficiency and low-energy hydrogen production catalysts is essential to alleviate environmental problems. Here, the CdS nanorods are the main body, and the CdS-MoS2 dumbbell structure is synthesized by the solvothermal method to make the photogenerated electrons flow along the one-dimensional axis. The nanoconfinement effect of MOF-derived In2O3 hollow hexagonal prisms greatly expands the spectral absorption range of the composite photocatalysts. The CdS-In2O3 S-scheme heterojunction was constructed by a simple electrostatic-driven self-assembly method. In situ irradiation X-ray photoelectron spectroscopy analysis shows that the internal electric field drives the photogenerated electrons in In2O3 to move to CdS, forming a S-scheme heterojunction of CdS-In2O3, which greatly promotes the separation of electron-hole pairs. In2O3 is combined with the sidewalls of the CdS-MoS2 dumbbell to weaken the surface oxidation kinetics, thereby inhibiting the surface photo-corrosion reaction. MoS2 promotes the CdS-In2O3 S-scheme heterojunction photocatalyst to show significant photocatalytic hydrogen evolution performance. The hydrogen production rate under the irradiation of a 300 W simulated light source is 198.58 mmol h(-1) g(-1), and natural light can produce a large number of visible bubbles. The effective separation of reduction and oxidation functional sites in space, the directional transfer of photogenerated electrons-holes, and the construction of S-scheme heterojunctions are the main factors for the significant increase in the catalytic activity of semiconductor photocatalysts. This work provides an effective strategy for designing metal sulfide-based photocatalysts with high activity and high stability of water-splitting properties.
引用
收藏
页码:10715 / 10728
页数:14
相关论文
共 67 条
[31]   Anchoring Ni single atoms on sulfur-vacancy-enriched ZnIn2S4 nanosheets for boosting photocatalytic hydrogen evolution [J].
Pan, Jingwen ;
Zhang, Gongxin ;
Guan, Zhongjie ;
Zhao, Qianyu ;
Li, Guoqiang ;
Yang, Jianjun ;
Li, Qiuye ;
Zou, Zhigang .
JOURNAL OF ENERGY CHEMISTRY, 2021, 58 :408-414
[32]   Cadmium Sulfide Quantum Dots Supported on Gallium and Indium Oxide for Visible-Light-Driven Hydrogen Evolution from Water [J].
Pan, Yun-xiang ;
Zhuang, Huaqiang ;
Hong, Jindui ;
Fang, Zheng ;
Liu, Hai ;
Liu, Bin ;
Huang, Yizhong ;
Xu, Rong .
CHEMSUSCHEM, 2014, 7 (09) :2537-2544
[33]   A Ternary Dumbbell Structure with Spatially Separated Catalytic Sites for Photocatalytic Overall Water Splitting [J].
Qiu, Bocheng ;
Cai, Lejuan ;
Zhang, Ning ;
Tao, Xiaoming ;
Chai, Yang .
ADVANCED SCIENCE, 2020, 7 (17)
[34]   Efficient Solar Light Harvesting CdS/Co9S8 Hollow Cubes for Z-Scheme Photocatalytic Water Splitting [J].
Qiu, Bocheng ;
Zhu, Qiaohong ;
Du, Mengmeng ;
Fan, Linggang ;
Xing, Mingyang ;
Zhang, Jinlong .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (10) :2684-2688
[35]   A robust and efficient catalyst of CdxZn1-xSe motivated by CoP for photocatalytic hydrogen evolution under sunlight irradiation [J].
Qiu, Bocheng ;
Zhu, Qiaohong ;
Xing, Mingyang ;
Zhang, Jinlong .
CHEMICAL COMMUNICATIONS, 2017, 53 (05) :897-900
[36]   A robust CdS/In2O3 hierarchical heterostructure derived from a metal-organic framework for efficient visible-light photocatalytic hydrogen production [J].
Ren, Jia-Tong ;
Yuan, Kun ;
Wu, Ke ;
Zhou, Liang ;
Zhang, Ya-Wen .
INORGANIC CHEMISTRY FRONTIERS, 2019, 6 (02) :366-375
[37]   Direct Z-scheme CdS-NiPc heterojunctions as noble metal-free photocatalysts for enhanced photocatalytic hydrogen evolution [J].
Sheng, Jialiang ;
Wang, Chunqiang ;
Duan, Fang ;
Yan, Shengrong ;
Lu, Shuanglong ;
Zhu, Han ;
Du, Mingliang ;
Chen, Xin ;
Chen, Mingqing .
CATALYSIS SCIENCE & TECHNOLOGY, 2021, 11 (23) :7683-7693
[38]   Direct and Selective Photocatalytic Oxidation of CH4 to Oxygenates with O2 on Cocatalysts/ZnO at Room Temperature in Water [J].
Song, Hui ;
Meng, Xianguang ;
Wang, Shengyao ;
Zhou, Wei ;
Wang, Xusheng ;
Kako, Tetsuya ;
Ye, Jinhua .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2019, 141 (51) :20507-20515
[39]   Balanced Excitation between Two Semiconductors in Bulk Heterojunction Z-Scheme System for Overall Water Splitting [J].
Srinivasan, Nagarajan ;
Sakai, Etsuo ;
Miyauchi, Masahiro .
ACS CATALYSIS, 2016, 6 (04) :2197-2200
[40]   Heterojunction Photocatalysts Based on 2D Materials: The Role of Configuration [J].
Su, Qian ;
Li, Yao ;
Hu, Ran ;
Song, Fang ;
Liu, Siyuan ;
Guo, Cuiping ;
Zhu, Shenmin ;
Liu, Wenbin ;
Pan, Jian .
ADVANCED SUSTAINABLE SYSTEMS, 2020, 4 (09)