Sulfite-Assisted Acetate Conversion from CO Electroreduction.

CO electroreduction acetate electrolyte engineering nucleophilicity sulfite

Journal

ChemSusChem
ISSN: 1864-564X
Titre abrégé: ChemSusChem
Pays: Germany
ID NLM: 101319536

Informations de publication

Date de publication:
20 May 2024
Historique:
revised: 16 05 2024
received: 30 03 2024
accepted: 16 05 2024
medline: 21 5 2024
pubmed: 21 5 2024
entrez: 21 5 2024
Statut: aheadofprint

Résumé

The efficient acetate conversion from CO electroreduction is challenging due to the poor selectivity at high reaction rate, which requires the competition with H2 and other C2+ (i.e., ethylene, ethanol, n-propanol) reduction products. Electrolyte engineering is one of the efficient strategies to regulate the reaction microenvironment. In this work, the adding of sulfite (SO32-) with high nucleophilicity in KOH electrolytes was demonstrated to enable improving the CO-to-acetate conversion via generating a S-O chemical bond between SO32- and oxygenated *C2 intermediates (i.e., *CO-CO, *CO-COH) compared with that in pure KOH system on both synthesized Cu(200)- and normal commercial Cu(111)-facets-exposed metallic Cu catalysts. As a result, the prepared Cu(200)-facets-exposed metallic Cu catalyst with surface ions modification showed an superior Faradaic efficiency of 63.6% at -0.6 A·cm-2, and extraordinary absolute value of peak partial current density as high as 1.52 A·cm-2 with adding SO32- in KOH electrolytes, compared to the best reported values in both CO and CO2 electroreduction. Our work suggests an attractive strategy to introduce the oxyanion with high nucleophilicity in electrolytes to regulate the microenvironment for industrial-current-density electrosynthesis of acetate from CO electroreduction.

Identifiants

pubmed: 38769898
doi: 10.1002/cssc.202400683
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e202400683

Informations de copyright

© 2024 Wiley‐VCH GmbH.

Auteurs

Jiaxing Ma (J)

Fudan University, Laboratory of Advanced Materials and Department of Chemistry, CHINA.

Tianyang Liu (T)

Nanjing Forestry University, College of Chemical Engineering, CHINA.

Shuya Hao (S)

Fudan University, Laboratory of Advanced Materials, CHINA.

Shuai Yan (S)

University of Bonn, Institute of Inorganic Chemistry, GERMANY.

Zikai Xu (Z)

California Institute of Technology, Division of Chemistry and Chemical Engineering, UNITED STATES.

Songtao Yang (S)

Fudan University, Laboratory of Advanced Materials and Department of Chemistry, CHINA.

Haifeng Shen (H)

The University of Adelaide, School of Chemical Engineering, AUSTRALIA.

Yu Jing (Y)

Nanjing Forestry University, College of Chemical Engineering, CHINA.

Chen Peng (C)

The University of Adelaide, School of Chemical Engineering, 259 North Terrace, 5005, ADELAIDE, AUSTRALIA.

Classifications MeSH