Yin Hua-Qing, Cui Ming-Yang, Wang Hao, Peng Yuan-Zhao, Chen Jia, Lu Tong-Bu, Zhang Zhi-Ming
Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science & Engineering, Tianjin University of Technology, Tianjin 300384, China.
Inorg Chem. 2023 Aug 28;62(34):13722-13730. doi: 10.1021/acs.inorgchem.3c01011. Epub 2023 Aug 4.
Carbon dioxide cycloaddition into fine chemicals is prospective technology to solve energy crisis and environmental issues. However, high temperature and pressure are usually required in the conventional cycloaddition reactions of CO with epoxides. Moreover, metal active sites play a vital role in the CO cycloaddition, but it is still unclear. Herein, we select the isostructural MOF-919-Cu-Fe and MOF-919-Cu-Al as models to promote the performance and clarify the effects of metal type on the CO cycloaddition. The MOF-919-Cu-Fe with exposed Fe and Cu Lewis acid sites reaches the CO cycloaddition with over 99.9% conversion and over 99.9% selectivity at room temperature and a 1 bar CO atmosphere, 3.0- and 52.6-fold higher than those of the MOF-919-Cu-Al with Al and Cu sites (33.8%) and the 1H-pyrazole-4-carboxylic acid, Fe, and Cu mixed system (1.9%), respectively. The proposed mechanism demonstrated that the exposed Fe sites facilitate the ring opening of epoxide and CO activation to boost the CO cycloaddition reaction. This work provides a new insight to tune the catalytic sites of MOFs to achieve high performance for CO fixation.
将二氧化碳环加成制备精细化学品是解决能源危机和环境问题的一项有前景的技术。然而,在传统的CO与环氧化物的环加成反应中通常需要高温和高压。此外,金属活性位点在CO环加成中起着至关重要的作用,但目前仍不清楚。在此,我们选择同构的MOF-919-Cu-Fe和MOF-919-Cu-Al作为模型来提升性能并阐明金属类型对CO环加成的影响。具有暴露的Fe和Cu路易斯酸位点的MOF-919-Cu-Fe在室温及1 bar CO气氛下实现了CO环加成,转化率超过99.9%,选择性超过99.9%,分别比具有Al和Cu位点的MOF-919-Cu-Al(33.8%)和1H-吡唑-4-羧酸、Fe和Cu混合体系(1.9%)高3.0倍和52.6倍。所提出的机理表明,暴露的Fe位点促进了环氧化物的开环和CO的活化,从而推动了CO环加成反应。这项工作为调节MOFs的催化位点以实现CO固定的高性能提供了新的见解。