等离子体子
光催化
人工光合作用
半导体
材料科学
纳米技术
可再生能源
太阳能
太阳能转换
纳米颗粒
能量转换
光电子学
催化作用
化学
物理
工程类
电气工程
热力学
生物
生物化学
生态学
作者
Laura Collado,Anna Reynal,Fernando Fresno,Mariam Barawi,Carlos Escudero,Virgínia Pérez-Dieste,Juan M. Coronado,David P. Serrano,James R. Durrant,Víctor A. de la Peña O’Shea
标识
DOI:10.1038/s41467-018-07397-2
摘要
Sunlight plays a critical role in the development of emerging sustainable energy conversion and storage technologies. Light-induced CO2 reduction by artificial photosynthesis is one of the cornerstones to produce renewable fuels and environmentally friendly chemicals. Interface interactions between plasmonic metal nanoparticles and semiconductors exhibit improved photoactivities under a wide range of the solar spectrum. However, the photo-induced charge transfer processes and their influence on photocatalysis with these materials are still under debate, mainly due to the complexity of the involved routes occurring at different timescales. Here, we use a combination of advanced in situ and time-resolved spectroscopies covering different timescales, combined with theoretical calculations, to unravel the overall mechanism of photocatalytic CO2 reduction by Ag/TiO2 catalysts. Our findings provide evidence of the key factors determining the enhancement of photoactivity under ultraviolet and visible irradiation, which have important implications for the design of solar energy conversion materials.
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