异质结
光催化
材料科学
纳米棒
X射线光电子能谱
分解水
制氢
氧化还原
载流子
吸附
化学工程
动力学
光催化分解水
电场
光电子学
纳米技术
纳米颗粒
光化学
催化作用
氢
表面光电压
可见光谱
化学动力学
反应速率常数
作者
Shuang Ma,Wenke Wang,Zhenze Hu,Shukui Shi,Peiying Yang,Yanmin Hou,Hailong Zhang,Changdong Chen,Z. F. Wang,Haopeng Jiang
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-02-03
卷期号:42 (6): 5156-5163
被引量:43
标识
DOI:10.1021/acs.langmuir.5c06431
摘要
In the field of photocatalytic water splitting for hydrogen (H 2 ) production, heterojunction engineering is regarded as one of the effective strategies to enhance the separation efficiency of photogenerated charge carriers and the redox capability. In this work, a simple electrostatic self-assembly method was employed to intimately couple CuWO 4 nanoparticles with CdS nanorods, thereby constructing a CdS/CuWO 4 heterojunction for photocatalytic H 2 evolution from water. In situ XPS and surface photovoltage measurements confirm the presence of a strong built-in electric field (IEF) and an S-scheme charge transfer pathway at the CdS/CuWO 4 heterojunction interface. Meanwhile, the IEF strength in the CdS/CuWO 4 heterojunction is 2.16 and 5.23 times that of CdS and CuWO 4, respectively. Furthermore, DFT calculations reveal that the H* adsorption energy on the CdS/CuWO 4 heterojunction is −0.19 eV, compared with −0.57 eV on CdS, indicating that constructing an S-scheme heterojunction can optimally tune the reaction kinetics of photocatalytic H 2 evolution and thereby enhance the H 2 production activity. Using lactic acid as a sacrificial agent, the optimized CdS/CuWO 4 S-scheme heterojunction exhibits a higher H 2 evolution rate of 54.53 mmol·g –1 ·h –1, which is approximately 3.86 times that of CdS nanorods (14.1 mmol·g –1 ·h –1 ). Continuous photocatalytic H 2 evolution tests demonstrate that the CdS/CuWO 4 heterojunction maintains excellent photostability after 12 h of uninterrupted illumination. This study provides insights into the design and development of efficient S-scheme heterojunctions to further improve the activity and stability of photocatalytic H 2 production.
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