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Three-dimensional porous hollow fibre copper electrodes for efficient and high-rate electrochemical carbon dioxide reduction

机译:三维多孔中空纤维铜电极,可高效高效地减少二氧化碳排放

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摘要

Aqueous-phase electrochemical reduction of carbon dioxide requires an active, earth-abundant electrocatalyst, as well as highly efficient mass transport. Here we report the design of a porous hollow fibre copper electrode with a compact three-dimensional geometry, which provides a large area, three-phase boundary for gas–liquid reactions. The performance of the copper electrode is significantly enhanced; at overpotentials between 200 and 400 mV, faradaic efficiencies for carbon dioxide reduction up to 85% are obtained. Moreover, the carbon monoxide formation rate is at least one order of magnitude larger when compared with state-of-the-art nanocrystalline copper electrodes. Copper hollow fibre electrodes can be prepared via a facile method that is compatible with existing large-scale production processes. The results of this study may inspire the development of new types of microtubular electrodes for electrochemical processes in which at least one gas-phase reactant is involved, such as in fuel cell technology.
机译:二氧化碳的水相电化学还原需要一种活性的,富含地球的电催化剂,以及高效的质量传输。在这里,我们报告了具有紧凑三维几何形状的多孔中空纤维铜电极的设计,该电极为气-液反应提供了大面积的三相边界。铜电极的性能大大提高;在200至400mV的超电势下,二氧化碳的法拉第效率可降低至85%。此外,与现有技术的纳米晶铜电极相比,一氧化碳的形成速率至少大一个数量级。可以通过与现有的大规模生产工艺兼容的简便方法来制备铜中空纤维电极。这项研究的结果可能会激发用于电化学过程的新型微管电极的开发,其中涉及至少一种气相反应物,例如在燃料电池技术中。

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