催化作用
再分配(选举)
格式化
非平衡态热力学
化学
热的
光化学
能量转换效率
化学物理
连接器
工作(物理)
化学工程
材料科学
热能
光催化
活化能
电荷(物理)
载流子
纳米技术
表面电荷
能量转换
羧酸盐
协同催化
多相催化
作者
Guiyu Huang,Panzhe Qiao,Feng Li,Congsen Liu,Ying Xie,Aiping Wu,Dongxu Wang,Jiancong Liu,Chungui Tian,Honggang Fu
摘要
ABSTRACT Solar‐driven low‐temperature reverse water‐gas shift offers a sustainable route for CO 2 conversion yet suffers from insufficient efficiency and unclear reaction mechanisms. Herein, we demonstrate that light drives the surface charge redistribution of a Pt cluster/CeO 2 catalyst, unlocking synergistic dual pathways for enhanced CO production. Using light as the sole energy input (2.27 W/cm 2 ), the catalyst surface reaches a localized temperature of ∼309°C while the reactor environment remains at only ∼54°C. In a continuous‐flow system with cold inlet gases, this catalyst achieves a CO production rate of 846.9 mmol g cat −1 h −1 , outperforming conventional thermal systems. Remarkably, comparable performance is achieved using natural sunlight alone, even under outdoor ambient temperature of −21°C. Mechanistic studies reveal that light‐driven interfacial charge redistribution constructs the nonequilibrium Pt δ+ ‐O V ‐Ce 3+ structure, which promotes CO 2 activation, triggering the carboxylate pathway and enhancing the formate route, giving rise to a cooperative effect that significantly accelerates the overall reaction. This stands in stark contrast to the single formate route that dominates conventional thermal catalysis. This work establishes light as a dynamic regulator for engineering catalytic sites, offering a promising strategy for efficient solar energy conversion.
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