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通过溶剂分散在催化剂表面上控制离聚物排列来调节一氧化碳电还原途径。

Modulating CO electroreduction pathways through controlled ionomer arrangement on catalyst surfaces via solvent dispersion.

作者信息

Yin Yaoyu, Ling Zhongnan, Liu Shiqiang, Jiao Jiapeng, Zhou Meng, Zhang Pei, Tong Xing, Fan Yueqian, Yang Jiahao, Liu Huanyan, Xing Xueqing, Zhang Jianling, Xu Yi, Liang Hongyan, Kang Xinchen, Han Buxing

机构信息

CAS Laboratory of Colloid and Interface and Thermodynamics, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.

School of Chemistry and Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Innovation (Camb). 2025 Mar 18;6(6):100882. doi: 10.1016/j.xinn.2025.100882. eCollection 2025 Jun 2.

Abstract

Ionomers play a vital role in the preparation of electrodes for CO electroreduction, and controlling the ionomer configuration on the catalyst surface offers an effective strategy for adjusting the surface microenvironment of the electrode, thereby influencing the distribution of CO electroreduction products. In this study, we demonstrate that Nafion, a commonly used ionomer, exhibits distinct aggregation behaviors in solvents with different dielectric constant (ε) values. These differences in aggregation result in varied Nafion arrangements on the catalyst surface, which in turn affect the binding of ∗CO and ∗H intermediates, enabling control over product distribution. For example, over a Cu nanosheet catalyst at 800 mA cm, the Faradaic efficiency for multicarbon products increases from 67.5% to 90.5% simply by changing the dispersion solvent from low-ε dimethyl sulfoxide to moderate-ε isopropanol. This work introduces a novel approach for fine-tuning CO electroreduction product distribution through manipulation of the dispersion solvent without requiring modifications to the catalyst or ionomer.

摘要

离聚物在用于CO电还原的电极制备中起着至关重要的作用,控制催化剂表面的离聚物构型为调节电极表面微环境提供了一种有效策略,从而影响CO电还原产物的分布。在本研究中,我们证明了常用的离聚物Nafion在具有不同介电常数(ε)值的溶剂中表现出明显的聚集行为。这些聚集差异导致Nafion在催化剂表面的排列不同,进而影响CO和H中间体的结合,从而实现对产物分布的控制。例如,在800 mA cm的Cu纳米片催化剂上,仅通过将分散溶剂从低ε的二甲基亚砜改为中等ε的异丙醇,多碳产物的法拉第效率就从67.5%提高到了90.5%。这项工作引入了一种新方法,通过控制分散溶剂来微调CO电还原产物分布,而无需对催化剂或离聚物进行改性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a88/12169282/99b595056beb/fx1.jpg

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