Quantitative Electro-Reduction of CO2 to Liquid Fuel over Electro-Synthesized Metal–Organic Frameworks
Author(s) -
Xinchen Kang,
Bin Wang,
Kui Hu,
Kai Lyu,
Xue Han,
Ben F. Spencer,
Mark D. Frogley,
Floriana Tuna,
Eric J. L. McInnes,
Robert A. W. Dryfe,
Buxing Han,
Sihai Yang⧫,
Martin Schröder
Publication year - 2020
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.0c05913
Subject(s) - electrode , chemistry , electrochemistry , electrolyte , metal organic framework , faraday efficiency , formic acid , foil method , catalysis , indium , chemical engineering , current density , inorganic chemistry , analytical chemistry (journal) , materials science , composite material , organic chemistry , physics , adsorption , quantum mechanics , engineering
Efficient electro-reduction of CO 2 over metal-organic framework (MOF) materials is hindered by the poor contact between thermally synthesized MOF particles and the electrode surface, which leads to low Faradaic efficiency for a given product and poor electrochemical stability of the catalyst. We report a MOF-based electrode prepared via electro-synthesis of MFM-300(In) on an indium foil, and its activity for the electrochemical reduction of CO 2 is assessed. The resultant MFM-300(In)-e/In electrode shows a 1 order of magnitude improvement in conductivity compared with that for MFM-300(In)/carbon-paper electrodes. MFM-300(In)-e/In exhibits a current density of 46.1 mA cm -2 at an applied potential of -2.15 V vs Ag/Ag + for the electro-reduction of CO 2 in organic electrolyte, achieving an exceptional Faradaic efficiency of 99.1% for the formation of formic acid. The facile preparation of the MFM-300(In)-e/In electrode, coupled with its excellent electrochemical stability, provides a new pathway to develop efficient electro-catalysts for CO 2 reduction.
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