电化学
碳纤维
还原(数学)
兴奋剂
材料科学
催化作用
多孔性
电催化剂
甘氨酸
化学工程
多孔介质
化学
无机化学
电极
物理化学
有机化学
复合材料
氨基酸
复合数
光电子学
数学
工程类
几何学
生物化学
作者
Jianguo Zhu,Thijs Mulder,Anna Rokicińska,Lucie M. Lindenbeck,Järi Van den Hoek,Remco W. A. Havenith,Ana V. Cunha,Piotr Kuśtrowski,Adam Slabon,Shoubhik Das,Pegie Cool
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2024-07-08
卷期号:14 (14): 10987-10997
被引量:14
标识
DOI:10.1021/acscatal.4c00881
摘要
Electrochemical conversion of CO 2 into CO is highly attractive since CO is highly valuable for its wide use in organic synthesis as well as a fuel-type molecule. However, the selective formation of CO from CO 2 is highly sensitive to the variation of particle size, coordination number, and defects in the electrocatalyst. Considering this, we report a boosted electrochemical CO 2 reduction performance on a Ni, N-codoped hierarchical porous carbon material (Ni@MicroPNC) by exposing substantial active sites during the carbonization process by using ZnCl 2 as the porous template agent due to its relatively low boiling point. A particular advantage of our electrocatalyst is that the support (N-doped hierarchical porous carbon material) of the Ni-catalyst is synthesized by using glycine as a carbon precursor. To our observation, the as-prepared Ni@MicroPNC catalyst displayed a high CO faradaic efficiency (FE) of 92.8% with a high partial current density ( j co ) of 22.4 mA cm –2 and outstanding current density stability at −0.81 V (vs RHE) for 10 h. The suggested high CO selectivity and catalytic stability of Ni@MicroPNC are attributed to the synergistic effect of high specific surface area, optimized hierarchical structure, Ni, N codoping into the porous carbon material, and relatively weaker CO binding strength. Furthermore, DFT calculations indicate that the doped N atom interacted with the Ni center to lower the energy barrier of *CO desorption. This finding provides a facile strategy for the synthesis of low-cost and highly active nanoparticle-based electrocatalysts for a selective reduction of CO 2 into CO.
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