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ID 70162
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Kamiya, Kazuhide Research Center for Solar Energy Chemistry, Graduate School of Engineering Science, The University of Osaka
Nakasone, Sora Research Center for Solar Energy Chemistry, Graduate School of Engineering Science, The University of Osaka
Kurihara, Ryo Research Center for Solar Energy Chemistry, Graduate School of Engineering Science, The University of Osaka
Inoue, Asato Research Center for Solar Energy Chemistry, Graduate School of Engineering Science, The University of Osaka
Irie, Hazuki Research Center for Solar Energy Chemistry, Graduate School of Engineering Science, The University of Osaka
Nakahata, Shoko Research Center for Solar Energy Chemistry, Graduate School of Engineering Science, The University of Osaka
Nishina, Yuta Research Institute for Interdisciplinary Science, Okayama University ORCID Kaken ID publons researchmap
Taniguchi, Satoshi Research Institute for Chemical Process Technology, National Institute of Advanced Industrial Science and Technology (AIST), Central 5
Nguyen, Thuy T. H. Research Institute for Chemical Process Technology, National Institute of Advanced Industrial Science and Technology (AIST), Central 5
Kataoka, Sho Research Institute for Chemical Process Technology, National Institute of Advanced Industrial Science and Technology (AIST), Central 5
Abstract
The conversion of CO2 into multicarbon (C2+) products via electrochemical reduction is considered a key technology for the sustainable production of fuels and chemicals. The performance of high-rate gaseous CO2 electrolysis is governed by interrelated factors such as the electrocatalysts, electrodes, electrolytes, and cell architectures. Despite the intensive focus on catalyst research, systematic studies addressing the other components remain scarce, leaving critical gaps in our understanding toward achieving higher performance in CO2 electrolysis systems. The nanoscale design of catalyst surface electronic structures and the macroscale design of electrodes and electrolyzer architectures both influence the overall activity of the electrochemical system. In designing macroscale components, it is necessary to establish benchmarks based on a comprehensive evaluation of CO2 emissions for the entire electrolysis process, because these parameters are directly linked to output metrics such as current density and cell voltage under practical operating conditions. This review summarizes recent advances in electrodes and electrolyzers, and through life-cycle assessment (LCA), evaluates key performance indicators (KPIs) for achieving negative emissions and assesses the current technology readiness of CO2 electrolysis.
Published Date
2026
Publication Title
Chemical Science
Volume
volume17
Issue
issue9
Publisher
Royal Society of Chemistry (RSC)
Start Page
4363
ISSN
2041-6520
NCID
AA12555653
Content Type
Journal Article
language
English
OAI-PMH Set
岡山大学
Copyright Holders
© 2026 The Author(s).
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Web of Science KeyUT
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isVersionOf https://doi.org/10.1039/d5sc08419a
License
http://creativecommons.org/licenses/by-nc/3.0/
助成情報
JPMJCR24S6: 未利用有機物の炭素化:資源循環のためのマルチナリーカーボンの創出 ( 国立研究開発法人科学技術振興機構 / Japan Science and Technology Agency )
23H02063: 超高速CO2電解系の多階層横断的解析とそれに基づく高選択触媒の創製 ( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )