双金属片
催化作用
材料科学
选择性
产量(工程)
量子产额
共价键
协同催化
活动站点
工作(物理)
人工光合作用
纳米技术
化学工程
贵金属
金属
能量转换效率
光化学
合理设计
催化效率
电荷(物理)
化学物理
多相催化
量子效率
过渡金属
组合化学
硫黄
电化学
表面工程
氧化还原
反应机理
作者
Zhiwei Shao,Caichao Ye,Yi Zhang,Jun Xiong,Haipeng Zuo,Wei Jiang,Jun Di
摘要
ABSTRACT Direct solar‐driven conversion of CO 2 and H 2 O into high‐value‐added C 2 products, such as acetic acid, represents a critical frontier challenge in artificial photosynthesis. However, its efficiency is primarily constrained by sluggish photogenerated charge migration and the dynamics limitations for C‐C coupling. This paper reports a “disorder‐induced reconstruction” strategy that utilizes the inherent local disorder of covalent organic frameworks (COFs) to induce the construction of asymmetric active centers on the surface of Bi 24 O 31 Br 10 (BOB), inducing atomic‐scale reconstruction and spontaneously forming extended regions with asymmetric Bi(δ+)‐Bi(δ‐) bimetallic sites. Without the use of sacrificial agents or noble metal co‐catalysts, the resulting catalyst exhibits excellent performance in the conversion of CO 2 to acetate, with a yield as high as 1.03 mmol g −1 h −1 and a selectivity of 97.63%. The apparent quantum efficiencies of catalyst can reach 13.75% and 8.33% at 380 and 400 nm, respectively. This work reveals a previously unknown mechanism for reconstructing inorganic surfaces into asymmetric active structural units using local disorder in organic modifiers, providing a paradigm for the design of next‐generation photocatalysts.
科研通智能强力驱动
Strongly Powered by AbleSci AI