Zhao Yuan, Zu Xiaolong, Chen Runhua, Li Xiaodong, Jiang Yawen, Wang Zhiqiang, Wang Shumin, Wu Yang, Sun Yongfu, Xie Yi
Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, China.
Institute of Energy, Hefei Comprehensive National Science Center, Hefei 230031, China.
J Am Chem Soc. 2022 Jun 15;144(23):10446-10454. doi: 10.1021/jacs.2c02594. Epub 2022 May 31.
CO electroreduction to high-energy-density C products is highly attractive, whereas the C selectivity under industrial current densities is still unsatisfying. Here, an anti-swelling anion exchange ionomer (AEI) was first proposed to optimize the local environment for promoting industrial-current-density CO-to-C electroreduction. Taking the anti-swelling AEI-modified oxide-derived Cu nanosheets as an example, Raman spectroscopy and contact angle measurements revealed that the OH-accumulated -N(CH) groups and anti-swelling backbone of AEI could synergistically regulate the local pH level and water content. Fourier-transform infrared spectroscopy and theoretical calculations demonstrated that the higher local pH value could lower the energy barrier for the rate-limiting COCO* hydrogenated to COCOH* from 0.08 to 0.04 eV, thereby boosting the generation of C products. Owing to the anti-swelling backbone, the optimized water content of 3.5% could suppress the competing H evolution and hence facilitate the proton-electron transfer step for C production. As a result, the anti-swelling AEI-modified oxide-derived Cu nanosheets achieved a C Faradaic efficiency of 85.1% at a current density up to 800 mA cm with a half-cell power conversion efficiency exceeding 50%, outperforming most reported powder catalysts.
将CO电还原为高能量密度的含碳产物极具吸引力,然而在工业电流密度下的碳选择性仍不尽人意。在此,首次提出一种抗溶胀阴离子交换离聚物(AEI)来优化局部环境,以促进工业电流密度下的CO到碳的电还原。以抗溶胀AEI修饰的氧化物衍生铜纳米片为例,拉曼光谱和接触角测量表明,AEI中积累OH-的-N(CH)基团和抗溶胀主链可以协同调节局部pH值和含水量。傅里叶变换红外光谱和理论计算表明,较高的局部pH值可以将限速步骤COCO氢化为COCOH的能垒从0.08 eV降至0.04 eV,从而促进含碳产物的生成。由于抗溶胀主链,优化后的含水量为3.5%可以抑制竞争性析氢,从而促进生成碳的质子-电子转移步骤。结果,抗溶胀AEI修饰的氧化物衍生铜纳米片在高达800 mA cm的电流密度下实现了85.1%的碳法拉第效率,半电池功率转换效率超过50%,优于大多数已报道的粉末催化剂。