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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Gas phase electrocatalytic conversion of CO2 to syn-fuels on Cu based catalysts-electrodes
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Gas phase electrocatalytic conversion of CO2 to syn-fuels on Cu based catalysts-electrodes

机译:铜基催化剂-电极上的气相电催化将二氧化碳转化为合成燃料

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A novel electrocatalytic system based on a low temperature proton exchange membrane (Sterion) was developed for the gas phase electrocatalytic conversion of CO2. This configuration allows the introduction of renewable energy in the chemical production chain via fuels production from direct CO2 electro-reduction at atmospheric pressure and low temperatures (below 90 degrees C). For that purpose, three different Membrane Electrode Assemblies (MEAs) based on three different Cu based cathodic-catalysts were prepared and characterized: Cu-G/Sterion/IrO2, Cu-AC/Sterion/IrO2 and Cu-CNF/Sterion/IrO2; graphite (G), activated carbon (AC) and carbon nanofibers (CNF). Thus, H2O was fed and electrolyzed on the IrO2 anode of the cell, thereby supplying H+ across the membrane to react with CO2 in the cathodic-catalyst and leading to the production of a mixture of syn-fuels (syn-gas, methanol, methane center dot center dot center dot). Remarkably, the nature of the cathodic-catalyst carbon support had a strong influence on the electrocatalytic activity and selectivity of the system. Hence, the Cu-AC-based cathodic-catalyst showed the highest CO2 electrocatalytic activity, due to the highest surface area of the AC support and the larger metal dispersion of the Cu particles leading to acetaldehyde and methanol as the main reaction products. Besides the lower conductivity of the AC support, the lowest energy consumption values for CO2 conversion and methanol and acetaldehyde production was also achieved with the MEA based on Cu-AC cathodic catalyst due to its higher electrocatalytic activity. (C) 2016 Elsevier B.V. All rights reserved.
机译:开发了一种基于低温质子交换膜(Sterion)的新型电催化系统,用于气相电催化转化CO2。这种配置允许在大气压力和低温(低于90摄氏度)下通过直接CO2电解还原生产的燃料,将可再生能源引入化工生产链。为此,基于三种不同的基于铜的阴极催化剂制备了三种不同的膜电极组件(MEA),并对其进行了表征:Cu-G / Sterion / IrO2,Cu-AC / Sterion / IrO2和Cu-CNF / Sterion / IrO2;石墨(G),活性炭(AC)和碳纳米纤维(CNF)。因此,将H2O进料并在电池的IrO2阳极上进行电解,从而在整个膜上提供H +,使其与阴极催化剂中的CO2反应,并导致生成合成燃料(合成气,甲醇,甲烷)的混合物中心点中心点中心点)。值得注意的是,阴极催化剂碳载体的性质对系统的电催化活性和选择性有很大的影响。因此,由于AC载体的最大表面积和Cu颗粒的较大的金属分散,导致乙醛和甲醇成为主要反应产物,因此,Cu-AC基阴极催化剂显示出最高的CO 2电催化活性。除了AC载体的电导率较低外,基于Cu-AC阴极催化剂的MEA由于具有较高的电催化活性,因此还实现了最低的CO2转化能耗以及甲醇和乙醛生产能耗。 (C)2016 Elsevier B.V.保留所有权利。

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