CO2 Electroreduction to Long-Chain Hydrocarbons on Cobalt Catalysts

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Preikschas, Phil
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Zhang, Jie
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Seemakurthi, Ranga Rohit
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Lian, Zan
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Martín, Antonio José
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Xi, Shibo
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Krumeich, Frank
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Ma, Haibin
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Zhou, Yansong
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López, Núria
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Yeo, Boon Siang
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Pérez-Ramírez, Javier
dc.date.accessioned
2024-09-27T07:27:21Z
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2024-12-16T11:52:24Z
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2024-09-27T07:27:21Z
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2024-12-16T11:52:24Z
dc.date.issued
2024-09-24
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http://hdl.handle.net/2072/537830
dc.description.abstract
Renewable-powered electrocatalytic CO2 conversion to long-chain hydrocarbons represents a sustainable path to produce chemicals and fuels. However, recently discovered systems still lack C–C coupling capabilities required to yield longer, more valuable carbon chains. This study reports cobalt catalysts with a focus on a Co3O4-derived material for the selective conversion of CO2 to C1–C7 hydrocarbons, following an Anderson–Schulz–Flory distribution. The obtained chain growth probability (α) of 0.54 substantially exceeds that of any other known electrocatalyst, which ranged from 0.2 to 0.4. Detailed in situ characterization and simulations indicated that Co-Co3O4 interfaces, formed in situ during CO2 electrolysis, are the active sites that promote enhanced chain growth. To prevent overreduction that causes the deactivation of these interfacial sites, the electrode is exposed to intermittent short reoxidation cycles during CO2 electrolysis. Consequently, the catalyst regained its oxidic phase and ability to form hydrocarbons. Overall, this study opens new frontiers in the one-step conversion of CO2 into multi-carbon products and suggests the exploration of metal–metal oxide interfaces as a promising strategy for further progress.
eng
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13 p.
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dc.language.iso
eng
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dc.publisher
Wiley-VCH
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dc.rights
CC-BY 4.0
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RECERCAT (Dipòsit de la Recerca de Catalunya)
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Química
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dc.title
CO2 Electroreduction to Long-Chain Hydrocarbons on Cobalt Catalysts
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dc.type
info:eu-repo/semantics/article
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dc.type
info:eu-repo/semantics/publishedVersion
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dc.subject.udc
54 - Química
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dc.embargo.terms
cap
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dc.relation.projectID
NCCR Catalysis (grant number 180544), a National Centre of Competence in Research funded by the Swiss National Science Foundation.
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B.S.Y. thanks the National Research Foundation of Singapore (Urban Solutions and Sustainability, Industry Alignment Fund (Pre-Positioning) Programme, A-0004543-00-00) and the Ministry of Education, Singapore (A-8001571-00-00) for financial support.
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R.R.S. and Z.L. acknowledge funding from the European Union's Horizon Europe research and innovation programmes Marie Skłodowska-Curie grant agreement nos. 754510 and 101064867.
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N.L., Z.L., and R.R.S. thank the Spanish Ministry of Science and Innovation (PID2021-122516OB-I00), Severo Ochoa (CEX2019-000925-S)
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dc.identifier.doi
https://doi.org/10.1002/aenm.202401447
dc.rights.accessLevel
info:eu-repo/semantics/openAccess


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