催化作用
氨
纳米颗粒
氢
化学
氨生产
无机化学
化学工程
电催化剂
纳米技术
材料科学
电化学
电极
有机化学
物理化学
工程类
作者
Leticia S. Bezerra,Paul Brasseur,Sam Sullivan Allsop,Rongsheng Cai,Kaline N. da Silva,Shiqi Wang,Harishchandra Singh,Ashok K. Yadav,Hugo L. S. Santos,Mykhailo Chundak,IbrahiM Abdelsalam,Vilma J. Heczko,Elton Sitta,Mikko Ritala,Wenyi Huo,Thomas J. A. Slater,Sarah J. Haigh,Pedro H. C. Camargo
标识
DOI:10.1002/ange.202405459
摘要
Abstract The hydrogen evolution and nitrite reduction reactions are key to producing green hydrogen and ammonia. Antenna–reactor nanoparticles hold promise to improve the performances of these transformations under visible‐light excitation, by combining plasmonic and catalytic materials. However, current materials involve compromising either on the catalytic activity or the plasmonic enhancement and also lack control of reaction selectivity. Here, we demonstrate that ultralow loadings and non‐uniform surface segregation of the catalytic component optimize catalytic activity and selectivity under visible‐light irradiation. Taking Pt−Au as an example we find that fine‐tuning the Pt content produces a 6‐fold increase in the hydrogen evolution compared to commercial Pt/C as well as a 6.5‐fold increase in the nitrite reduction and a 2.5‐fold increase in the selectivity for producing ammonia under visible light excitation relative to dark conditions. Density functional theory suggests that the catalytic reactions are accelerated by the intimate contact between nanoscale Pt‐rich and Au‐rich regions at the surface, which facilitates the formation of electron‐rich hot‐carrier puddles associated with the Pt‐based active sites. The results provide exciting opportunities to design new materials with improved photocatalytic performance for sustainable energy applications.
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