二氧化碳
工艺工程
连续反应器
流动化学
连续流动
生化工程
过程(计算)
流量(数学)
材料科学
软件部署
环境科学
化学
纳米技术
计算机科学
催化作用
有机化学
操作系统
几何学
工程类
数学
作者
Xuan Thang Cao,Daniel Manaye Kabtamu,Subodh Kumar,Rajender S. Varma
标识
DOI:10.1021/acssuschemeng.2c02491
摘要
The enormous research activity on the capture and conversion of CO 2 into useful entities is the manifestation of scientific concerns over climate change due to increased accumulation of CO 2 in the atmosphere. Although several thermo-, photo-, and electrocatalytic methods have been developed to convert CO 2 into various important chemicals including fuels, most of them have not been successfully implemented at the industrial level. The one of the apparent reasons is the thermodynamic stability of CO 2 that restricts their deployment at industrial scale because of the limitations associated with the strategy of amplifying batch reactors. Flow chemistry is an effective tool not only to develop continuous processes but also to intensify existing ones; implementation of flow processes at the commercial level is more desirable than that of batch processes. Thus, the application of flow chemistry in the CO 2 conversion domain has paved the way to develop continuous methodology and, not surprisingly, has garnered tremendous attention recently. Herein, the recent progress in continuous flow conversion of CO 2 into liquid chemicals via thermo-, photo-, and electrocatalytic processes is discussed including the importance of catalyst development, flow reaction parameters, and the type of flow reactors for developing a productive continuous flow process; existing challenges and future perspectives on flow chemistry for CO 2 conversion are highlighted.
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