硫化镉
磷化物
光催化
催化作用
电容
硫化物
镍
材料科学
电子转移
化学
制氢
化学工程
无机化学
光化学
电极
冶金
物理化学
工程类
生物化学
作者
Li Luo,Yuying Dang,Jinfeng Tian,Keying Lin,Feng Dong,Wei Wang,Baojun Ma
标识
DOI:10.1016/j.jcis.2024.04.183
摘要
The capacitance of a co-catalyst can be likened to a "double-edged sword". On the one hand, co-catalysts with high capacitance can store photoexcited electrons, thereby facilitating charge separation within the host catalyst. However, this property simultaneously restricts electron release. Both effects are enhanced with an increasing capacitance value, implying that excessively high capacitance can significantly hinder the photocatalytic hydrogen (H2) production reaction. Herein, we have designed a metal-organic framework (MOF) -derived carbon-coated nickel phosphide (C-Ni5P4) as the co-catalyst of CdS. When C-Ni5P4 and cadmium sulfide (CdS) are closely interconnected, electrons spontaneously migrate from CdS to C-Ni5P4 under irradiation due to the higher work function (WF) of C-Ni5P4 compared to CdS. Most importantly, although the WF of C-Ni5P4 is lower than that of Ni5P4, its specific capacitance (1.2 mF/cm2) is also lower than that of Ni5P4 (1.3 mF/cm2). This difference dramatically promotes electron release. Thereby exerting a strong positive effect on capacitance catalysis. Therefore, 7 %C-Ni5P4/CdS exhibits exceptional cyclic stability and has a remarkably high activity level of 12283 μmol/h/g and 3.8 times as many as 3.0 %Ni5P4/CdS. This study provides a theoretical basis for the advancement of photocatalysts with high efficiency in H2 production and is expected to be applied in other fields of photocatalysis.
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