过电位
电催化剂
材料科学
卟啉
钴
微型多孔材料
氧化还原
化学工程
碳纳米管
二氧化碳电化学还原
催化作用
无机化学
电极
纳米技术
光化学
电化学
有机化学
化学
一氧化碳
复合材料
物理化学
冶金
工程类
作者
Chao Wang,Yuzhuo Chen,Dai‐Jian Su,Shek‐Man Yiu,Kai‐Chung Lau,Lianhuan Han,Liu‐Bin Zhao,Dongping Zhan,Xunjin Zhu
标识
DOI:10.1002/adma.202303179
摘要
Electrocatalytic CO2 reduction reaction (CO2 RR) based on molecular catalysts, for example, cobalt porphyrin, is promising to enhance the carbon cycle and mitigate current climate crisis. However, the electrocatalytic performance and accurate evaluations remain problems because of either the low loading amount or the low utilization rate of the electroactive CoN4 sites. Herein a monomer is synthesized, cobalt(II)-5,10,15,20-tetrakis(3,5-di(thiophen-2-yl)phenyl)porphyrin (CoP), electropolymerized onto carbon nanotubes (CNTs) networks, affording a molecular electrocatalyst of 3D microporous nanofilm (EP-CoP, 2-3 nm thickness) with highly dispersed CoN4 sites. The new electrocatalyst shortens the electron transfer pathway, accelerates the redox kinetics of CoN4 sites, and improves the durability of the electrocatalytic CO2 RR. From the intrinsic redox behavior of CoN4 sites, the effective utilization rate is obtained as 13.1%, much higher than that of the monomer assembled electrode (5.8%), and the durability is also promoted dramatically (>40 h) in H-type cells. In commercial flow cells, EP-CoP can achieve a faradic efficiency for CO (FECO ) over 92% at an overpotential of 160 mV. At a higher overpotential of 620 mV, the working current density can reach 310 mA cm-2 with a high FECO of 98.6%, representing the best performance for electrodeposited molecular porphyrin electrocatalysts.
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