异质结
选择性
光催化
材料科学
载流子
量子产额
纳米颗粒
光化学
光电子学
化学工程
极化(电化学)
纳米技术
可见光谱
催化作用
量子点
产量(工程)
化学
半导体
还原(数学)
调制(音乐)
科技与社会
作者
Busheng Wang,Baoxin Ge,Linhai Sun,Pengyang Jiang,Caijin Huang
摘要
ABSTRACT The spin modulation of the electronic structure of photocatalysts offers a promising strategy to address selectivity challenges in photocatalysis. Herein, we present a novel ruthenium–carbon‐bonded MOF (RuCMOF) and construct a heterojunction with Cu 2 O nanoparticles for photocatalytic CO 2 reduction using water vapor. The optimized RuC‐MOF/10%Cu 2 O heterojunction achieves a remarkable CH 4 production rate of 663.6 µmol g −1 h −1 with 96.7% selectivity under visible light irradiation. The apparent quantum yield reaches 4.6% at 400 nm. Experimental and theoretical studies reveal that the atomically dispersed ruthenium–alkynyl units of RuC‐MOF and the heterostructure enable efficient photo‐excited carrier separation/transfer. Moreover, the Cu 2 O incorporation triggers a low‐spin to high‐spin transition in the Ru active centers of RuC‐MOF, suppressing charge recombination through spin‐selective electron transfer. Furthermore, the spin‐state modulation also weakens *CO adsorption, lowers the energy barrier for *CHO formation and accelerates the rate‐determining step. This work provides a new way for designing high‐performance metal─carbon‐bonded MOF photocatalysts through spin polarization engineering.
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