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耦合镍 - 铜原子对以促进具有近100%一氧化碳选择性的一氧化碳电还原反应。

Coupling Ni-Cu atomic pair to promote CO electroreduction with near-unity CO selectivity.

作者信息

Yu Weiting, Zhu Jieyun, Chen Sizhuo, Tang Juntao, Ye Jiexu, Song Shuang

机构信息

College of Environment, Zhejiang University of Technology, Hangzhou, 310032, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2023 Apr;30(18):51876-51886. doi: 10.1007/s11356-023-25975-w. Epub 2023 Feb 23.

Abstract

The electrocatalytic reduction of CO towards CO is one of the most desirable routines to reduce atmospheric CO concentration and maintain a global carbon balance. In this work, a novel porous NiCu-embedded ZIF-derived N-doped carbon nanoparticle (NiCu@NCNPs) catalyst has been identified as an active, highly selective, stable, and cost-effective catalyst in CO reduction. A CO selectivity as high as 100% has been achieved on NiCu@NCNPs which is the highest reported to date. The particle current density of CO on NiCu@NCNPs is around 15 mA cm under the optimized potential at -0.9 V vs. RHE. The NiCu@NCNPs electrode also exhibits excellent stability during the five sequential CO electroreduction experiments. The superior catalytic performance of NiCu@NCNPs in CORR can be related to its microstructure with high electrochemical surface area and low electron transfer resistance. Furthermore, a kinetic analysis has shown the formation of intermediate *COOH is the rate-determining step in CORR towards CO. According to the results of density functional theory (DFT) calculations, a low Gibbs-free energy change (∆G) for the rate-determining step leads to the enhanced catalytic performance of CORR on NiCu@NCNPs.

摘要

将二氧化碳电催化还原为一氧化碳是降低大气中二氧化碳浓度并维持全球碳平衡最理想的途径之一。在这项工作中,一种新型的嵌入多孔镍铜的沸石咪唑酯骨架结构衍生的氮掺杂碳纳米颗粒(NiCu@NCNPs)催化剂已被确定为在二氧化碳还原反应中具有活性、高选择性、稳定性且成本效益高的催化剂。在NiCu@NCNPs上实现了高达100%的一氧化碳选择性,这是迄今为止报道的最高值。在相对于可逆氢电极(RHE)为-0.9V的优化电位下,NiCu@NCNPs上一氧化碳的颗粒电流密度约为15 mA cm² 。在连续五次二氧化碳电还原实验中,NiCu@NCNPs电极也表现出优异的稳定性。NiCu@NCNPs在二氧化碳还原反应中的卓越催化性能与其具有高电化学表面积和低电子转移电阻的微观结构有关。此外,动力学分析表明,中间体*COOH的形成是二氧化碳还原为一氧化碳反应中的速率决定步骤。根据密度泛函理论(DFT)计算结果,速率决定步骤的低吉布斯自由能变化(∆G)导致了NiCu@NCNPs上二氧化碳还原反应催化性能的增强。

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