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Effect of 3d-transition metals doped in ZnO monolayers on the CO_2 electrochemical reduction to valuable products: first principles study

机译:ZnO单层掺杂的3D-过渡金属对有价值产品的CO_2电化学减少:第一个原理研究

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CO2 conversion to valuable products on ZnO (0001) monolayer doped by transition metals (TM-ZnO where TM is Sc, Ti, V, Cr, Mn, Fe, Co, Ni, and Cu) was investigated by density functional theory calculation. The results show that doping TMs can reduce the overpotential for CO2 reduction reaction (CRR) compared to pristine ZnO. Significantly, the oxidation state of TMs by different d-orbital occupancy results in a change of the electronic properties of the catalysts, leading to a difference in reactivity, reaction pathway, and selectivity of the final products. Early TMs (Sc to Cr) showing oxidation state 3(+) prefer CH4 as a product while late TMs (Mn to Cu) showing oxidation state 2(+) can make HCOOH. Remarkably, Co-ZnO can produce HCOOH with ultra-low overpotential at 0.02 V and can further produce CH3OH with an overpotential of only 0.45 V. Therefore, Co-ZnO monolayer is suggested as a promising CRR catalyst for experimental research. This work sheds light on the rational design of low-cost metal oxides with high stability, activity, and product selectivity for CRR and other reactions.
机译:通过密度泛函理论计算研究了通过过渡金属掺杂(TM-ZnO,TM为SC,Ti,V,Cr,Mn,Fe,Co,Ni和Cu)的TM-ZnO,TM,Ti,V,Cr,Mn,Fe,Co,Ni和Cu)上的ZnO(0001)单层转化为ZnO(0001)单层的零化产品。结果表明,与原始ZnO相比,掺杂TMS可以减少CO2还原反应(CRR)的过电位。显着地,通过不同的D-轨道占用率的TMS的氧化状态导致催化剂的电子性质的变化,导致反应性,反应途径和最终产物的选择性差异。早期TMS(SC至Cr)显示氧化态3(+)优选CH4作为产物,而在后期TMS(Mn至Cu),显示氧化态2(+)可以制备HCOOH。值得注意的是,CO-ZnO可以以0.02V的超低过电位产生HCOOH,并且可以进一步产生仅具有0.45V的过电位的CH 3 OH。因此,建议CO-ZnO单层作为实验研究的有希望的CRR催化剂。这项工作揭示了低成本金属氧化物的理性设计,具有高稳定性,活性和产品选择性,对CRR和其他反应。

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