多金属氧酸盐
催化作用
吸附
法拉第效率
碳酸二甲酯
产量(工程)
无机化学
化学
材料科学
碳酸盐
碱金属
电化学
偶联反应
星团(航天器)
Boosting(机器学习)
化学工程
金属
联轴节(管道)
多相催化
导电体
作者
Yan Zhang,Jiaqi Zhao,Qi Tao,Wenjing Deng,Fangfang Chang,Zhengyu Bai,Xinjun Wang,Guobin Wen,Qing Zhang,Xiaolei Wang
标识
DOI:10.1016/j.apcatb.2025.126098
摘要
Electrochemically converting CO 2 and CH 3 OH into dimethyl carbonate (DMC) is highly desirable but challenging, as it necessitates the catalysts’ simultaneous adsorption and activation of CO 2 and CH 3 OH. Besides, a moderately dense distribution of CO 2 catalytic active site is conductive to facilitating the C–O coupling. To solve these challenges, a nano-sized polyoxometalate (POM), [{Cu 6 (μ 3 -OH) 3 (en) 3 (H 2 O) 3 }(B-α-PW 9 O 34 )]·7 H 2 O ({Cu 6 PW 9 }, en = ethylenediamine), featuring ordered {Cu 6 } cluster and {PW 9 } intervals, is synthesized for electro-production of DMC. Benefiting from the unique architecture, the pre-prepared {Cu 6 PW 9 }/Cu FA catalyst exhibits a favorable DMC yield of 2.4 mol L –1 h –1 and 83.0 % Faradaic efficiency (FE) at room temperature (–1.6 V vs. Ag/AgCl). It is also capable of exerting the catalytic activity at –15 °C. Experimental investigations illustrate that the entire {Cu 6 PW 9 } provides a negatively charged environment to adsorb alkali metal cations (AM) as a cocatalyst to assist both the adsorption and activation of the CO 2 and CH 3 OH reactants. The ordered and discrete active sites coupling with the fixed metal–metal (M–M) distance of the skeleton effectively facilitate the coupling of *CO and *OCH 3 to DMC. This study presents a crystallography-dependent catalyst design strategy for efficient synthesis of DMC under ambient and low-temperature conditions. A nano-sized polyoxometalate featuring ordered {Cu 6 } cluster and {PW 9 } intervals is synthesized for the electro-production of DMC. The discrete and fixed Cu active sites, coupling with the anionic surface of polyoxometalate effectively facilitate the coupling of *CO and *OCH 3 to DMC. This study offers a crystallography-dependent catalyst design strategy for efficient synthesis of DMC. • A crystalline-mediated microenvironment engineering strategy to drive CO 2 into dimethyl carbonate (DMC). • The {Cu 6 PW 9 }/Cu FA could simultaneously adsorb and activate CO 2 and CH 3 OH. • The uniform and discrete Cu cluster promotes C–O coupling between *CO and *OCH 3 .
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