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Reactive capture of CO 2 via amino acid
by
Lee, Geonhui
, O'Brien, Colin P
, Kim, Jiheon
, Xiao, Yurou Celine
, Sargent, Edward H
, Fan, Mengyang
, Papangelakis, Panagiotis
, Li, Feng
, Sun, Siyu Sonia
, Guo, Zunmin
, Han, Kai
, Gabardo, Christine M
, Corbett, Paul J
, Sinton, David
, Miao, Rui Kai
, Qiu, Chenyue
, Huang, Jianan Erick
, Zhao, Yong
, Chen, Yuanjun
, Yu, Yan
, Wang, Xinyue
, Howe, Jane Y
2024
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Reactive capture of CO 2 via amino acid
by
Lee, Geonhui
, O'Brien, Colin P
, Kim, Jiheon
, Xiao, Yurou Celine
, Sargent, Edward H
, Fan, Mengyang
, Papangelakis, Panagiotis
, Li, Feng
, Sun, Siyu Sonia
, Guo, Zunmin
, Han, Kai
, Gabardo, Christine M
, Corbett, Paul J
, Sinton, David
, Miao, Rui Kai
, Qiu, Chenyue
, Huang, Jianan Erick
, Zhao, Yong
, Chen, Yuanjun
, Yu, Yan
, Wang, Xinyue
, Howe, Jane Y
in
2024
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Reactive capture of CO 2 via amino acid
by
Lee, Geonhui
, O'Brien, Colin P
, Kim, Jiheon
, Xiao, Yurou Celine
, Sargent, Edward H
, Fan, Mengyang
, Papangelakis, Panagiotis
, Li, Feng
, Sun, Siyu Sonia
, Guo, Zunmin
, Han, Kai
, Gabardo, Christine M
, Corbett, Paul J
, Sinton, David
, Miao, Rui Kai
, Qiu, Chenyue
, Huang, Jianan Erick
, Zhao, Yong
, Chen, Yuanjun
, Yu, Yan
, Wang, Xinyue
, Howe, Jane Y
2024
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Journal Article
Reactive capture of CO 2 via amino acid
2024
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Overview
Reactive capture of carbon dioxide (CO
) offers an electrified pathway to produce renewable carbon monoxide (CO), which can then be upgraded into long-chain hydrocarbons and fuels. Previous reactive capture systems relied on hydroxide- or amine-based capture solutions. However, selectivity for CO remains low (<50%) for hydroxide-based systems and conventional amines are prone to oxygen (O
) degradation. Here, we develop a reactive capture strategy using potassium glycinate (K-GLY), an amino acid salt (AAS) capture solution applicable to O
-rich CO
-lean conditions. By employing a single-atom catalyst, engineering the capture solution, and elevating the operating temperature and pressure, we increase the availability of dissolved in-situ CO
and achieve CO production with 64% Faradaic efficiency (FE) at 50 mA cm
. We report a measured CO energy efficiency (EE) of 31% and an energy intensity of 40 GJ t
, exceeding the best hydroxide- and amine-based reactive capture reports. The feasibility of the full reactive capture process is demonstrated with both simulated flue gas and direct air input.
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