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2 reduction to C 2+ products on Cu and Cu xZn y electrodes: Effects of chemical composition and surface morphology]]>

机译:<![CDATA [电催化CO 2 减少到C 2 + 产品与 x zn y 电极:化学成分和表面形态的影响]]>

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摘要

The electrocatalytic CO2reduction reaction (CO2RR) is a promising strategy for producing multi?carbon compounds using only CO2and H2O at room temperature. Significant advances have already been achieved in understanding how some characteristics of copper electrodes, the current state-of-the-art catalyst for multi?carbon formation via CO2RR, affect the product spectrum. Advances and insights have been reported for, among others, the effect of crystallographic orientation, active surface area, and composition of M?copper (M?=?Au, Ag, Zn, etc.) materials, and how these alter the distribution of CO2RR products. However, a systematic study evaluating the significance of these variables in the CO2RR to C2+products is still lacking in the literature and represents an important step in the development of new materials with optimized properties that can be more selective to C2+compounds. In this paper, we have systematically investigated the effect of the roughness factor, chemical composition, and surface morphology of CuxZnyelectrocatalysts on the product distribution during CO2RR. Firstly, Cu, Cu90Zn10, and Cu75Zn25electrodes were exposed to oxidation-reduction cycles to produce Cu and CuxZnyelectrodes with different morphologies, roughness factors, and chemical composition. Our results show that an increase in the roughness factor and Zn content lead to higher faradaic efficiency (FE) to C2+products. Furthermore, the influence of the nanoscale morphology is imperative for the production of C2+compounds. Specifically, nanocubes of Cu and CuxZnypresented the highest FE to C2+products among the different surface morphologies studied in this work (polished flat surface, nanosheres, nanocubes, nanodendrites, and nanocauliflowers), showing that CC coupling during CO2RR is mainly shape dependent.
机译:电催化CO2还原反应(CO2RR)是一种很有前途的生产多功能催化剂的方法?室温下仅使用CO2和H2O的碳化合物。在了解铜电极(目前最先进的多用途催化剂)的一些特性方面已经取得了重大进展?通过CO2RR生成碳,影响产品光谱。在晶体取向、活性表面积和M?铜(M?=金、银、锌等)材料,以及这些材料如何改变CO2RR产品的分布。然而,文献中仍然缺乏评估这些变量在CO2RR到C2+产品中重要性的系统研究,这是开发具有优化性能的新材料的重要一步,可以对C2+化合物更具选择性。本文系统地研究了CuxZnY电催化剂的粗糙度因子、化学成分和表面形貌对CO2RR过程中产物分布的影响。首先,将Cu、Cu90Zn10和Cu75Zn25电极暴露于氧化还原循环中,以产生具有不同形貌、粗糙度因子和化学成分的Cu和CuxZnY电极。我们的结果表明,粗糙度因子和锌含量的增加会导致对C2+产物的法拉第效率(FE)更高。此外,纳米级形貌的影响对于C2+化合物的生产至关重要。具体而言,在本研究中研究的不同表面形态(抛光平面、纳米层、纳米立方体、纳米树枝晶和纳米花椰菜)中,Cu和CuxZn的纳米立方体呈现出最高的FE-C2+产物,表明CO2RR过程中的CC耦合主要取决于形状。

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