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  • Novel Bi-Doped Amorphous SnOx Nanoshells for Efficient Electrochemical CO2 Reduction into Formate at Low Overpotentials

    Author(s)
    Yang, Qi
    Wu, Qilong
    Liu, Yang
    Luo, Shuiping
    Wu, Xiaotong
    Zhao, Xixia
    Zou, Haiyuan
    Long, Baihua
    Chen, Wen
    Liao, Yujia
    Li, Lanxi
    Shen, Pei Kang
    Duan, Lele
    Quan, Zewei
    Griffith University Author(s)
    Wu, Qi-Long
    Year published
    2020
    Metadata
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    Abstract
    Engineering novel Sn-based bimetallic materials could provide intriguing catalytic properties to boost the electrochemical CO2 reduction. Herein, the first synthesis of homogeneous Sn1- x Bix alloy nanoparticles (x up to 0.20) with native Bi-doped amorphous SnOx shells for efficient CO2 reduction is reported. The Bi-SnOx nanoshells boost the production of formate with high Faradaic efficiencies (>90%) over a wide potential window (-0.67 to -0.92 V vs RHE) with low overpotentials, outperforming current tin oxide catalysts. The state-of-the-art Bi-SnOx nanoshells derived from Sn0.80 Bi0.20 alloy nanoparticles exhibit a great ...
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    Engineering novel Sn-based bimetallic materials could provide intriguing catalytic properties to boost the electrochemical CO2 reduction. Herein, the first synthesis of homogeneous Sn1- x Bix alloy nanoparticles (x up to 0.20) with native Bi-doped amorphous SnOx shells for efficient CO2 reduction is reported. The Bi-SnOx nanoshells boost the production of formate with high Faradaic efficiencies (>90%) over a wide potential window (-0.67 to -0.92 V vs RHE) with low overpotentials, outperforming current tin oxide catalysts. The state-of-the-art Bi-SnOx nanoshells derived from Sn0.80 Bi0.20 alloy nanoparticles exhibit a great partial current density of 74.6 mA cm-2 and high Faradaic efficiency of 95.8%. The detailed electrocatalytic analyses and corresponding density functional theory calculations simultaneously reveal that the incorporation of Bi atoms into Sn species facilitates formate production by suppressing the formation of H2 and CO.
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    Journal Title
    Advanced Materials
    Volume
    32
    Issue
    36
    DOI
    https://doi.org/10.1002/adma.202002822
    Subject
    Chemical sciences
    Engineering
    Physical sciences
    Science & Technology
    Physical Sciences
    Chemistry, Multidisciplinary
    Chemistry, Physical
    Publication URI
    http://hdl.handle.net/10072/413140
    Collection
    • Journal articles

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