光催化
等离子体子
材料科学
异质结
载流子
催化作用
纳米技术
热电子
人口
吸附
半导体
太阳能
光化学
等离子纳米粒子
光电子学
合理设计
太阳能转换
电子转移
选择性
机制(生物学)
降级(电信)
全球人口
作者
Zhijie Zhu,Shuairen Qian,Xudong Dong,Shuang Liu,Yuxuan Zhou,Kaiqi Nie,Xingda An,Chaoran Li,Yi Cheng,Binhang Yan,Kai Feng,Xiaohong Zhang,Le He
标识
DOI:10.1038/s41467-025-64606-5
摘要
Plasmonic photocatalysis offers a promising route to harvest solar energy and drive chemical reactions by the generated heat and energetic charge carriers towards a low-carbon economy. Understanding the mechanisms of plasmonic photocatalysis is vital for the rational design of efficient catalysts but remains a great challenge. Here we report the discovery of an overlooked photocatalytic mechanism based on the enhanced coverage of CO on an Au-Ni heterostructure under light. Detailed studies reveal that hot carrier transfer from Au to Ni via plasmonic excitation increases the electron density of Ni, thereby boosting the population of Ni sites capable of CO adsorption. This increase in active CO-binding sites, rather than local heating or altered adsorption properties of individual Ni sites, is found to be the major contributor to the light-promoted CH4 production in the Au-Ni-catalyzed CO hydrogenation reaction. This mechanism is further validated by the observation of higher CH4 selectivity in photocatalytic CO2 hydrogenation. Our study deepens the mechanistic understanding of plasmonic photocatalysis and offers new ideas for the design of advanced catalytic structures.
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