Cao Xu Chuan, Zhang Bai Chao, Cui Jing, Suo Chao, Duan Xiao Chuan, Guo Shao Hui, Zhang Xian-Ming
Key Laboratory of Interface Science and Engineering in Advanced Material, Ministry of Education, College of Chemistry, College of Chemical Engineering and Technology, Taiyuan University of Technology, Taiyuan 030024, Shanxi, China.
Langmuir. 2024 Sep 3;40(35):18695-18705. doi: 10.1021/acs.langmuir.4c02335. Epub 2024 Aug 22.
Plasmonic materials are fundamental photosensitizer materials for photocatalytic reactions. Various structures, including core-shell types, satellite types, and distribution types, have been designed and prepared for the optimization of photocatalytic reactions. However, understanding the profound enhancement mechanism of various structures is still challenging. Thus, the plasmonic coverage is considered to be an index for analyzing the influence mechanism. Here, Au@Ni-MOF core-shell flower sphere-like photocatalysts are prepared, and the size of the flower sphere can be precisely regulated by varying the amount of Au. Thus, different plasmonic coverages are realized through the tuning of spheres of different sizes. The high plasmonic coverage of catalysts can enhance visible light absorption, facilitate the generation of photogenerated electron-hole pairs, and shorten the photogenerated carrier transport distance. Moreover, the exponential relationship between the photocatalytic hydrogen production performance and the plasmonic coverage can also be used as a guide for material design. As a result, a photocatalytic hydrogen production rate of 3389 μmol·g·h is achieved in the Au@Ni-MOF sample with high plasmonic coverage, which will advance the plasmonic application in photocatalytic reactions.
等离子体材料是光催化反应的基础光敏剂材料。为了优化光催化反应,人们设计并制备了包括核壳型、卫星型和分布型在内的各种结构。然而,理解各种结构深刻的增强机制仍然具有挑战性。因此,等离子体覆盖率被认为是分析影响机制的一个指标。在此,制备了Au@Ni-MOF核壳花球状光催化剂,通过改变金的用量可以精确调控花球的尺寸。因此,通过调节不同尺寸的球体实现了不同的等离子体覆盖率。催化剂的高等离子体覆盖率可以增强可见光吸收,促进光生电子-空穴对的产生,并缩短光生载流子的传输距离。此外,光催化产氢性能与等离子体覆盖率之间的指数关系也可为材料设计提供指导。结果,在具有高等离子体覆盖率的Au@Ni-MOF样品中实现了3389 μmol·g·h的光催化产氢速率,这将推动等离子体在光催化反应中的应用。