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首页> 外文期刊>Angewandte Chemie >Sub-Second Time-Resolved Surface-Enhanced Raman Spectroscopy Reveals Dynamic CO Intermediates during Electrochemical CO2 Reduction on Copper
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Sub-Second Time-Resolved Surface-Enhanced Raman Spectroscopy Reveals Dynamic CO Intermediates during Electrochemical CO2 Reduction on Copper

机译:副第二次分辨的表面增强拉曼光谱透露在铜电化学二氧化碳中的动态CO中间体

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摘要

The electrocatalytic carbon dioxide (CO2) reduction reaction (CO2RR) into hydrocarbons is a promising approach for greenhouse gas mitigation, but many details of this dynamic reaction remain elusive. Here, time-resolved surface-enhanced Raman spectroscopy (TR-SERS) is employed to successfully monitor the dynamics of CO2RR intermediates and Cu surfaces with sub-second time resolution. Anodic treatment at 1.55 V vs. RHE and subsequent surface oxide reduction (below -0.4 V vs. RHE) induced roughening of the Cu electrode surface, which resulted in hotspots for TR-SERS, enhanced time resolution (down to approximate to 0.7 s) and fourfold improved CO2RR efficiency toward ethylene. With TR-SERS, the initial restructuring of the Cu surface was followed (<7 s), after which a stable surface surrounded by increased local alkalinity was formed. Our measurements revealed that a highly dynamic CO intermediate, with a characteristic vibration below 2060 cm(-1), is related to C-C coupling and ethylene production (-0.9 V vs. RHE), whereas lower cathodic bias (-0.7 V vs. RHE) resulted in gaseous CO production from isolated and static CO surface species with a distinct vibration at 2092 cm(-1).
机译:将二氧化碳(CO2)电催化还原成碳氢化合物(CO2RR)是一种很有前途的温室气体减排方法,但这种动态反应的许多细节仍然难以捉摸。在这里,时间分辨表面增强拉曼光谱(TR-SERS)被用来以亚秒的时间分辨率成功地监测CO2RR中间体和铜表面的动力学。在1.55 V vs.RHE下进行阳极处理以及随后的表面氧化物还原(低于-0.4 V vs.RHE)会导致铜电极表面粗糙化,这导致TR-SERS的热点,提高时间分辨率(降低至约0.7 s),并将CO2RR对乙烯的效率提高四倍。在TR-SERS中,铜表面发生了初始重组(<7秒),之后形成了一个稳定的表面,周围是增加的局部碱度。我们的测量结果表明,一种高度动态的CO中间产物,其特征振动低于2060厘米(-1),与C-C耦合和乙烯生成有关(-0.9伏vs.RHE),而较低的阴极偏压(-0.7伏vs.RHE)导致孤立和静态CO表面物种产生气体CO,在2092厘米(-1)处有明显的振动。

著录项

  • 来源
    《Angewandte Chemie》 |2021年第30期|共9页
  • 作者单位

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

    Univ Utrecht Inst Sustainable &

    Circular Chem Inorgan Chem &

    Catalysis Univ Weg 99 NL-3584 CG Utrecht Netherlands;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用化学;
  • 关键词

    copper; electrocatalysis; in situ; Raman spectroscopy;

    机译:铜电催化;原位;拉曼光谱;

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