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  • Selective methane electrosynthesis enabled by a hydrophobic carbon coated copper core-shell architecture

    Author(s)
    Zhang, XY
    Li, WJ
    Wu, XF
    Liu, YW
    Chen, J
    Zhu, M
    Yuan, HY
    Dai, S
    Wang, HF
    Jiang, Z
    Liu, PF
    Yang, HG
    Griffith University Author(s)
    Yang, Huagui
    Year published
    2022
    Metadata
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    Abstract
    The electrosynthesis of valuable chemicals via carbon dioxide reduction reaction (CO2RR) has provided a promising way to address global energy and sustainability problems. However, the selectivity and activity of deep-reduction products (DRPs) still remain as big challenges. Here, a copper-carbon-based catalyst with a hydrophobic core-shell architecture has been constructed and was found to exhibit excellent DRPs of methane generation with a faradaic efficiency of 81 ± 3% in a neutral medium and a maximum partial current density of -434 mA cm-2 in a flow cell configuration, which is among the best of CO2-to-CH4 electrocatalysts. ...
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    The electrosynthesis of valuable chemicals via carbon dioxide reduction reaction (CO2RR) has provided a promising way to address global energy and sustainability problems. However, the selectivity and activity of deep-reduction products (DRPs) still remain as big challenges. Here, a copper-carbon-based catalyst with a hydrophobic core-shell architecture has been constructed and was found to exhibit excellent DRPs of methane generation with a faradaic efficiency of 81 ± 3% in a neutral medium and a maximum partial current density of -434 mA cm-2 in a flow cell configuration, which is among the best of CO2-to-CH4 electrocatalysts. Density functional theory calculations suggest that the hydrophobic structure decreasing the water coverage on the catalyst surface can promote the protonation of the ∗CO intermediate and block CO production, further favoring the generation of methane. These results provide a new insight into the electrosynthesis of DRPs via constructing a hydrophobic core-shell architecture for tuning the surface water coverage. This journal is
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    Journal Title
    Energy and Environmental Science
    Volume
    15
    Issue
    1
    DOI
    https://doi.org/10.1039/d1ee01493e
    Publication URI
    http://hdl.handle.net/10072/413643
    Collection
    • Journal articles

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