首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Electroreduction of Carbon Dioxide to Methane on Copper, Copper-Silver, and Copper-Gold Catalysts: A DFT Study
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Electroreduction of Carbon Dioxide to Methane on Copper, Copper-Silver, and Copper-Gold Catalysts: A DFT Study

机译:在铜,铜银和铜金催化剂上将二氧化碳电还原为甲烷的DFT研究

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摘要

The electrochemical reduction of CO2 is a promising process capable of efficiently recycling CO2 waste and converting it into hydrocarbon fliel. To date, copper is the best metal catalyst; however the overpotential to achieve this reaction on Cu is excessively high. It follows that the development of a catalyst to efficiently catalyze the conversion with a low overpotential at a reasonable current density is needed. Many aspects of the molecular details of the reaction are still unclear. In this work, DFT calculations are applied to investigate CO2 electroreduction to CH4 over Cu3Ag and Cu3Au stepped surfaces (211) compared to that over Cu(2li). In the resulting analysis, the Cu3Ag surface shows a slightly lower overpotential and suppresses OH poisoning compared to the Cu surface, yet the selectivity toward H2 increases. The Cu3Au is not a good candidate due to higher overpotential and a relatively weak CO adsorption resulting in CO desorption rather than further reduction. The CO desorption can also be problematic on Cu3Ag as well. The thermodynamics and kinetics of the nonelectrochemical hydrogenations are also examined to explore alternative paths which might result in an absence of formaldehyde intermediate production during CO2 reduction on Cu.
机译:CO 2的电化学还原是一种有前途的方法,能够有效地回收CO 2废物并将其转化为碳氢化合物。迄今为止,铜是最好的金属催化剂。然而,在铜上完成该反应的过电位过高。因此,需要开发一种在合理的电流密度下以低过电势有效催化转化的催化剂。反应的分子细节的许多方面仍不清楚。在这项工作中,DFT计算用于研究在Cu3Ag和Cu3Au阶梯表面(211)上与Cu(2li)相比,CO2对CH4的电还原。在结果分析中,与Cu表面相比,Cu3Ag表面显示出稍低的过电势并抑制了OH中毒,但对H2的选择性却增加了。由于较高的超电势和相对较弱的CO吸附,导致CO解吸而不是进一步还原,因此Cu3Au不是很好的候选者。 CO解吸对Cu 3 Ag也可能是有问题的。还检查了非电化学氢化的热力学和动力学,以探索可替代的途径,这些途径可能会导致在CO2还原Cu时不产生甲醛中间产物。

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