化学
下游(制造业)
工艺工程
合成气
烟气
上游(联网)
过程集成
高效能源利用
生化工程
催化作用
计算机科学
工程类
电信
生物化学
运营管理
电气工程
有机化学
作者
Colin P. O’Brien,Rui Kai Miao,Ali Shayesteh Zeraati,Geonhui Lee,Edward H. Sargent,David Sinton
出处
期刊:Chemical Reviews
[American Chemical Society]
日期:2024-03-22
卷期号:124 (7): 3648-3693
被引量:62
标识
DOI:10.1021/acs.chemrev.3c00206
摘要
CO2 electrolyzers have progressed rapidly in energy efficiency and catalyst selectivity toward valuable chemical feedstocks and fuels, such as syngas, ethylene, ethanol, and methane. However, each component within these complex systems influences the overall performance, and the further advances needed to realize commercialization will require an approach that considers the whole process, with the electrochemical cell at the center. Beyond the cell boundaries, the electrolyzer must integrate with upstream CO2 feeds and downstream separation processes in a way that minimizes overall product energy intensity and presents viable use cases. Here we begin by describing upstream CO2 sources, their energy intensities, and impurities. We then focus on the cell, the most common CO2 electrolyzer system architectures, and each component within these systems. We evaluate the energy savings and the feasibility of alternative approaches including integration with CO2 capture, direct conversion of flue gas and two-step conversion via carbon monoxide. We evaluate pathways that minimize downstream separations and produce concentrated streams compatible with existing sectors. Applying this comprehensive upstream-to-downstream approach, we highlight the most promising routes, and outlook, for electrochemical CO2 reduction.
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