选择性
电子转移
电子
材料科学
X射线光电子能谱
产量(工程)
化学
光化学
电子传输链
共轭体系
工作(物理)
吡啶
还原(数学)
纳米技术
金属
X射线吸收精细结构
Boosting(机器学习)
光催化
催化作用
能量转换效率
化学工程
载流子
单电子还原
科技与社会
作者
Yong Wu,Xing Gao,Ranbo Yu,Chengyang Zhu,Dongyang Yu,Zaizhu Lou,Zhujie Li,Gang Wang
摘要
ABSTRACT Targeted transport of electrons is essential to enable the photoreduction process efficiently, which remains a significant challenge in current research. Constructing “molecule‐junction” between photocatalyst and metal active sites is expected to achieve the precise directional electron transfer. 2‐Mercaptonicotinic acid (H 2 L), with both sulfhydryl groups (─SH) and a conjugated pyridine ring, was introduced as the intermediary to build “molecule‐junction” connecting Ni‐doped BiOCl (Ni/BOC) and Au NPs (denoted as Ni/BOC‐H 2 L‐Au). XPS and XAFS results confirm the existence of Bi─S and Au─S bonds, which verify that the “molecule‐junction” of Bi─H 2 L─Au have been successfully constructed in Ni/BOC. Due to the unique structure of Ni/BOC‐H 2 L‐Au, it showed excellent performance in CO 2 photoreduction. In the absence of sacrificial agents, the ethane (C 2 H 6 ) yield (155.4 µmol g −1 h −1 ) and selectivity (85.8%) exceeded most of the reported photocatalysts. The combined theoretical and experimental analysis demonstrates that the “molecule‐junction” establishes a directional electron transfer pathway (Ni/BOC→H 2 L→Au NPs), which significantly enhances charge separation efficiency and promotes targeted electron accumulation at Au NPs active sites, thereby boosting C 2 H 6 production via CO 2 photoreduction. This work proposes a viable strategy for designing efficient photocatalysts for high‐value C 2+ product synthesis.
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