化学
选择性
动力学同位素效应
质子化
催化作用
质子
产物抑制
反应中间体
解吸
密度泛函理论
动能
动力学
动力控制
光化学
纳米技术
光催化
反向
对偶(语法数字)
组合化学
反应速率常数
反应速率
多相催化
可逆反应
同位素标记
化学动力学
紧身衣
双重角色
化学工程
计算化学
作者
Ji Wu,Dawei Xu,Xiaonan Dong,Yumo Sun,Xiangning He,Keran Zhang,Junwen Zhou,Xiaojie Ma,Bo Wang
摘要
Abstract Understanding and engineering the rate-determining step (RDS) is key to unlocking the concurrent high activity and selectivity required for efficient CO2-to-CH4 conversion. Herein, we employ mesostructured UiO-66-NH2 (denoted as MUiO) as a model photocatalyst to investigate the pathway control in CO2 photoreduction. Combining macroscopic product and microscopic intermediate kinetic isotope effect (KIE) studies and density functional theory (DFT) calculations, we demonstrate that loading Pd clusters onto MUiO triggers a decisive switch from normal to inverse KIE, thus steering the dominant reaction pathway from CO toward CH4 production and lowering the activation barrier of the RDS from 1.88 to 1.12 eV (from *CH3O → CH4 to *CO → *CHO). The integration of framework and Pd sites promotes high product rate and selectivity by driving RDS through a dual function: enhanced interfacial proton supply by Pd clusters and suppressed unproductive *CO desorption through a kinetic trap for CO within the pores. Consequently, the optimal Pd-MUiO catalyst exhibited a 4.6-fold increase in CH4/CO selectivity and a 62.8-fold improvement in CH4 production relative to the pristine MUiO, surpassing previously reported analogous photocatalysts. This study offers a compelling strategy for tailoring CO2 photoconversion to CH4 by rationally engineering the RDS.
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