Molecular Stabilization of Sub-Nanometer Cu Clusters for Selective CO 2 Electromethanation

Electrochemical CO methanation powered by renewable electricity provides a promising approach to utilizing CO in the form of a high-energy-density, clean fuel. Cu nanoclusters have been predicted by theoretical calculations to improve methane selectivity. Direct electrochemical reduction of Cu-based...

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Veröffentlicht in:ChemSusChem 2022-01, Vol.15 (1), p.e202102010
Hauptverfasser: Zhang, Han, Yang, Yu, Liang, Yongxiang, Li, Jun, Zhang, An, Zheng, Han, Geng, Zhigang, Li, Fengwang, Zeng, Jie
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Sprache:eng
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Zusammenfassung:Electrochemical CO methanation powered by renewable electricity provides a promising approach to utilizing CO in the form of a high-energy-density, clean fuel. Cu nanoclusters have been predicted by theoretical calculations to improve methane selectivity. Direct electrochemical reduction of Cu-based metal-organic frameworks (MOFs) results in large-size Cu nanoparticles which favor multi-carbon products. This study concerns an electrochemical oxidation-reduction method to prepare Cu clusters from MOFs. The derived Cu clusters exhibit a faradaic efficiency of 51.2 % for CH with a partial current density of >150 mA cm . High-resolution microscopy, in situ X-ray absorption spectroscopy, in situ Raman spectroscopy, and a range of ex situ spectroscopies indicate that the distinctive CH selectivity is due to the sub-nanometer size of the derived materials, as well as stabilization of the clusters by residual ligands of the pristine MOF. This work offers a new insight into steering product selectivity of Cu by an electrochemical processing method.
ISSN:1864-5631
1864-564X
DOI:10.1002/cssc.202102010