Deng Jun, Qiu Limei, Xin Mudi, He Wenhui, Zhao Wenhui, Dong Juncai, Xu Guangtong
Sinopec Research Institute of Petroleum Processing, Beijing, 100083, China.
Chinese Academy of Sciences Institute of High Energy Physics, Beijing, 100039, China.
Small. 2024 Jul;20(27):e2311060. doi: 10.1002/smll.202311060. Epub 2024 Jan 29.
Cu-based metal-organic frameworks (MOFs) have attracted much attention for electrocatalytic CO reduction to high value-added chemicals, but they still suffer from low selectivity and instability. Here, an associative design strategy for the valence and coordination environment of the metal node in Cu-based MOFs is employed to regulate the CO2 electroreduction to ethylene. A novel "reduction-cleavage-recrystallization" method is developed to modulate the Cu(II)-Trimesic acid (BTC) framework to form a Cu(I)-BTC structure enriched with free carboxyl groups in the secondary coordination environment (SCE). In contrast to Cu(II)-BTC, the Cu(I)-BTC shows higher catalytic activity and better ethylene selectivity (≈2.2-fold) for CO electroreduction, which is further enhanced by increasing the content of free carboxyl groups, resulting in ethylene Faraday efficiency of up to 57% and the durability of the catalyst could last for 38 h without performance decline. It indicates that the synergistic effect between Cu(I)-O coordinated structure and free carboxyl groups considerably enhances the dimerization of *CO intermediates and hinders the hydrogenation of *CO intermediates in these competitive pathways. This work unravels the strong dependence of CO electroreduction on the Cu valence state and coordination environment in MOFs and provides a platform for designing highly selective electrocatalytic CO reduction catalysts.
铜基金属有机框架材料(MOFs)在电催化将CO还原为高附加值化学品方面备受关注,但它们仍存在选择性低和稳定性差的问题。在此,采用一种针对铜基金属有机框架材料中金属节点的价态和配位环境的关联设计策略来调控CO₂ 电还原为乙烯的过程。开发了一种新颖的“还原-裂解-重结晶”方法来调节Cu(II)-均苯三甲酸(BTC)框架,以形成在二级配位环境(SCE)中富含游离羧基的Cu(I)-BTC结构。与Cu(II)-BTC相比,Cu(I)-BTC对CO电还原表现出更高的催化活性和更好的乙烯选择性(约2.2倍),通过增加游离羧基的含量可进一步提高,从而使乙烯法拉第效率高达57%,且催化剂的耐久性可持续38小时而性能不下降。这表明Cu(I)-O配位结构与游离羧基之间的协同效应显著增强了CO中间体的二聚化,并在这些竞争途径中阻碍了CO中间体的氢化。这项工作揭示了CO电还原对金属有机框架材料中铜价态和配位环境的强烈依赖性,并为设计高选择性电催化CO还原催化剂提供了一个平台。