光催化分解水
分解水
催化作用
制氢
光化学
降级(电信)
氢
光降解
作者
Zhaoting Liu,Fang Wang,Zhengguo Zhang,Shixiong Min
出处
期刊:Sustainable Energy and Fuels
[The Royal Society of Chemistry]
日期:2021-09-28
卷期号:5 (19): 4904-4912
摘要
A photocatalyst foam is developed by growing high-density CdS microspheres on Ni2P nanolayer-modified Ni foam (NF) (termed CdS/NF–P) for efficient visible-light-driven photocatalytic H2 evolution. The in situ grown Ni2P thin layer on NF not only provides a large number of anchoring sites for the growth of high-density CdS microspheres for enhancing the visible light capture ability, but also offers active sites for catalyzing the H2 evolution reaction (HER). Meanwhile, the multiple heterojunction interfaces formed among NF, Ni2P, and CdS can greatly promote the separation of photogenerated electrons and holes. As a consequence, the CdS/NF–P photocatalyst foam exhibits good photocatalytic H2 evolution activity under visible light irradiation. The H2 evolution rate reaches 4.82 mmol h−1 gCdS−1 over the best CdS/NF–P photocatalyst foam, which is about five times that of CdS particles suspended in the reaction solution. More attractively, the photocatalyst foam can be easily recovered and recycled in the reaction solution by simple magnetic separation. In addition, the structural integrity makes the photocatalyst foam highly stable in the photocatalytic HER for 35 h. This work provides a new strategy for the design of efficient and practical photocatalyst foams that are easy to prepare on a large scale and compatible with device manufacturing for large-scale photochemical energy conversion.
科研通智能强力驱动
Strongly Powered by AbleSci AI