材料科学
光催化
等离子体子
兴奋剂
表面等离子共振
制氢
光化学
分解水
氢
光催化分解水
吸收(声学)
纳米技术
半导体
光电子学
表面等离子体子
金属
过氧化氢
可见光谱
氧化物
无机化学
等离子纳米粒子
光热治疗
纳米颗粒
氨
钝化
作者
Ke'an,Boyuan Wu,Jing-Tian Hu,Xiaopeng Bai,Penglei Wang,Yini Fang,Ruibin Jiang,Jianfang Wang
标识
DOI:10.1002/adma.202515476
摘要
Abstract Plasmonic photocatalysis has recently received much attention in generating high‐value‐added products. Schottky‐barrier‐free plasmonic photocatalysts are frontier materials that can effectively employ localized surface plasmon resonance to generate and utilize hot charge carriers. Herein, the development of a new type of Schottky‐barrier‐free plasmonic WO 3 ‐based photocatalyst through hydrogen doping, oxygen vacancy (OV) introduction, and metal doping is reported. Hydrogen doping and OV introduction broaden the light absorption range of the WO 3 ‐based photocatalyst, thereby enabling the generation of more hot charge carriers. Metal doping provides more catalytically active sites. More interestingly, both hot electrons and holes can be used to generate high‐value‐added products, i.e., ammonia and hydrogen peroxide. The optimal Mo‐H 0.23 WO 3− x photocatalyst exhibits excellent ammonia and hydrogen peroxide production rates of 187.53 and 196.25 µmol g −1 h −1 , respectively. Furthermore, a biphasic photocatalytic system is designed to suppress light absorption by water and maximize sunlight utilization. This work expands the scope of plasmonic photocatalysts towards degenerately doped plasmonic metal oxide semiconductors and provides a new paradigm for the solar‐driven generation of high‐value‐added products.
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