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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Nanofibrous cobalt oxide for electrocatalysis of CO2 reduction to carbon monoxide and formate in an acetonitrile-water electrolyte solution
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Nanofibrous cobalt oxide for electrocatalysis of CO2 reduction to carbon monoxide and formate in an acetonitrile-water electrolyte solution

机译:纳米纤维钴氧化物用于电常放二氧化碳与一氧化碳,并在乙腈 - 水电解质溶液中甲酸

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摘要

The electrocatalytic reduction of carbon dioxide (CO2) is an attractive option to efficiently bind electrical energy from renewable resources in artificial carbon fuels and feedstocks. The strategy is considered as crucial part in closing the anthropogenic carbon cycle. In particular, the electrosynthetic production of Cl species such as carbon monoxide (CO) would radiate immense power, since these building blocks offer a versatile chemistry to higher carbon products and fuels. In the present study we report the exploration of the catalytic behavior of semiconducting Co3O4 nanofibers for the conversion of CO2 to CO predominantly with a Faradaic efficiency of 65%. We assist the process by expanding the electrode network with nanofibrous interconnections and hence are able to demonstrate the electrosynthesis of CO without applying any metal supplement. We use polyacrylnitrile (PAN) as template polymer to generate highly crystalline Co3O4 fibers to expand the catalytically active surface to volume ratio. The stability of the nanofibrous electrodes remains for 8 h at a geometric current density of approximately 0.5 mA/cm(2) on a flat surface. The ease of synthesis and the comparatively high Faradaic yield for CO makes Co3O4 nanofibers a potential candidate for future large scale electrode utilization.
机译:二氧化碳(CO2)的电催化还原是一种有效的选择,可有效地将电能与人工碳燃料和原料中的可再生资源结合。该策略被认为是关除人为碳循环的关键部分。特别地,诸如一氧化碳(CO)如一氧化碳(CO)的Cl物种的电耦合产生将辐射巨大的功率,因为​​这些构件块为更高的碳产品和燃料提供了多功能化学。在本研究中,我们报告了半导体CO3O4纳米纤维催化行为的催化行为,主要具有65%的游览效率。我们通过将电极网络扩展具有纳米纤维互连来协助该过程,因此能够在不施加任何金属补充的情况下证明CO的电气合成。我们使用聚丙烯腈(PAN)作为模板聚合物,产生高结晶CO 3 O 4纤维,以将催化活性表面膨胀至体积比。纳米纤维电极的稳定性在平坦表面上以大约0.5mA / cm(2)的几何电流密度保持8小时。合成的易于合成和相对高的游艇率为CO使CO3O4纳米纤维成为未来大规模电极利用的潜在候选者。

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