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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Electroreduction of Carbon Dioxide into Selective Hydrocarbons at Low Overpotential Using Isomorphic Atomic Substitution in Copper Oxide
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Electroreduction of Carbon Dioxide into Selective Hydrocarbons at Low Overpotential Using Isomorphic Atomic Substitution in Copper Oxide

机译:用铜氧化物中的正像原子取代在低过电位下将二氧化碳的电极电导

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摘要

The conversion of carbon dioxide into selective hydrocarbons is vital for green energy generation. Due to the chemical instability and lower activity, environmentally stable transition metal oxides (e.g., CuO) are unpopular for CO2 electroreduction catalysis. Here, we demonstrate substitution of Cu with an isomorphic atom, i.e., Ni, in CuO and utilize it for improving the hydrocarbon selectivity by 4 times as compared to that of pristine CuO. Hydrocarbon formation is achieved at the lowest possible applied potential (-0.2 V, reversible hydrogen electrode). This gives the overpotential of about 0.37 V for methane and 0.28 V for ethylene, the lowest ever reported. Employing the ionic interaction between Ni and Cu, this catalyst suppresses the hydrogen evolution reaction to improve the hydrocarbon selectivity prominently. It is observed that current normalized by the Brunauer-Emmett-Teller surface area gives 15-20 times enhancement in the case of Ni-substituted CuO compared to undoped CuO. The in situ experiments indicate that Ni-doped CuO prefers CO pathways compared to formate, resulting into high hydrocarbon selectivity. The experimental observation is further supported by density functional theory studies, which reveal that the Ni-doped CuO catalyst has a higher limiting potential for CO, electroreduction to CH4 due to the stabilization of the CH2O intermediate on the Cu0.9375Ni0.0625O surface rather than the CHO intermediate, in comparison to the pristine CuO surface.
机译:将二氧化碳转化为选择性烃对绿色能量产生至关重要。由于化学不稳定和较低的活性,环境稳定的过渡金属氧化物(例如,CuO)不受催化的不受欢迎。在此,我们证明了Cu用同胞的原子,即Ni,CuO中的替代物,并利用其将烃选择性改善与原始CuO相比的4倍。在最低可能的施加电位(-0.2V,可逆氢电极)下实现烃形成。这使得对于甲烷约0.37V的过电位,对于乙烯为0.28V,最低报道。采用Ni和Cu之间的离子相互作用,该催化剂抑制了氢进化反应以突出地改善烃的选择性。观察到,与未掺杂的CuO相比,Brunauer-Emmett-exersizer表面积的电流在Ni取代的CuO的情况下给出15-20倍的增强。原位实验表明,与甲酸酯相比,Ni掺杂的CuO更喜欢Co途径,导致高碳氢化合物选择性。通过密度泛函理论研究进一步支持实验观察,揭示了Ni掺杂的CuO催化剂由于CH 2 O中间体在CH 2 O中间体的稳定而不是CH 2的稳定而不是CH 2的稳定性而不是与原始CuO表面相比,CHO中间体。

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