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

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作者
Recep Kas
Khalid Khazzal Hummadi
Ruud Kortlever
Patrick de Wit
Alexander Milbrat
Mieke W. J. Luiten-Olieman
Nieck E. Benes
Marc T. M. Koper
Guido Mul
机构
[1] PhotoCatalytic Synthesis Group,
[2] Faculty of Science and Technology,undefined
[3] MESA+ Institute for Nanotechnology,undefined
[4] University of Twente,undefined
[5] College of Engineering,undefined
[6] University of Baghdad,undefined
[7] Leiden Institute of Chemistry,undefined
[8] Leiden University,undefined
[9] Inorganic Membranes Group,undefined
[10] Faculty of Science and Technology,undefined
[11] MESA+ Institute for Nanotechnology,undefined
[12] University of Twente,undefined
[13] Molecular Nanofabrication Group,undefined
[14] Faculty of Science and Technology,undefined
[15] MESA+ Institute for Nanotechnology,undefined
[16] University of Twente,undefined
来源
Nature Communications | / 7卷
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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.
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