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Computational studies of electrochemical CO2 reduction on subnanometer transition metal clusters

机译:亚纳米过渡金属团簇电化学还原CO2的计算研究

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Computational studies of electrochemical reduction of CO2 to CO, HCOOH and CH4 were carried out using tetra-atomic transition metal clusters (Fe4, Co4, Ni4, Cu4 and Pt4) at the B3LYP level of theory. Novel catalytic properties were discovered for these subnanometer clusters, suggesting that they may be good candidate materials for CO2 reduction. The calculated overpotentials for producing CH4 are in the order, Co4 < Fe4 < Ni4 < Cu4 < Pt4, with both Co4 and Fe4 having overpotentials less than 1 V. Investigation of the effects of supports found that a Cu4 cluster on a graphene defect site has a limiting potential for producing CH4 comparable to that of a Cu (111) surface. However, due to the strong electronic interaction with the Cu4 cluster, the defective graphene support has the advantage of significantly increasing the limiting potentials for the reactions competing with CH4, such as the hydrogen evolution reaction (HER) and CO production.
机译:在理论上的B3LYP水平上,使用四原子过渡金属簇(Fe4,Co4,Ni4,Cu4和Pt4)进行了将CO2电化学还原为CO,HCOOH和CH4的计算研究。这些亚纳米团簇具有新的催化性能,表明它们可能是减少CO2的良好候选材料。计算出的生成CH4的过电势的顺序为Co4

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