面向面SnO2@Ni中空纤维使安培级CO2电还原形成85%的单次转换。

IF 25.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
The Innovation Pub Date : 2025-02-22 eCollection Date: 2025-06-02 DOI:10.1016/j.xinn.2025.100844
Yiheng Wei, Yanfang Song, Chang Zhu, Jianing Mao, Aohui Chen, Guanghui Feng, Gangfeng Wu, Xiaohu Liu, Shoujie Li, Guihua Li, Jiangjiang Wang, Xiao Dong, Wei Wei, Wei Chen
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引用次数: 0

摘要

电化学将二氧化碳转化为液体燃料是实现碳中和的一种很有前途的策略。二氧化锡(SnO2)表现出显著的电催化能力,将CO2转化为甲酸盐,但其效率受到其低催化活性的显著限制。在这里,我们构建了面向表面的SnO2纳米花,这些纳米花都矗立在三维镍中空纤维上,具有优异的二氧化碳到甲酸盐的电催化性能。在环境条件下,甲酸选择性为94%,在-1.1 V电流密度为1.3 A cm-2(相对于可逆氢电极[RHE])下稳定性为300 h。值得注意的是,它的二氧化碳单次转化率高达85%,超过了电催化领域的知名催化剂。独特的纳米结构及其先进的空间结构的协同组合是具有层次结构的面向面SnO2的原因,提供了充分暴露的活性位点,促进了质量和电荷的转移。电化学测量证实中空纤维电极的传质增强和原位光谱证实保留良好的Sn4+物质协同促进了高CO2转化活性。原位光谱和理论计算结果表明,SnO2(101)表面有利于形成中间产物和脱附,具有较高的甲酸选择性。这项研究为精确制造复合中空纤维电极提供了一种直接的方法,使与气体分子的高效电催化反应成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Facet-oriented SnO2@Ni hollow fiber enables ampere-level CO2 electroreduction to formate with 85% single-pass conversion.

The electrochemical conversion of CO2 into liquid fuels is a promising strategy for achieving carbon neutrality. Tin dioxide (SnO2) shows a notable ability to electrocatalytically convert CO2 into formate, though its efficiency is significantly limited by its low catalytic activity. Herein, we construct facet-oriented SnO2 nanoflowers all standing on a three-dimensional nickel hollow fiber that exhibits superior CO2-to-formate electrocatalytic performance. A formate selectivity of 94% and stability of 300 h with a current density of 1.3 A cm-2 at -1.1 V (vs. reversible hydrogen electrode [RHE]) are attained under ambient conditions. Notably, an extremely high CO2 single-pass conversion rate of 85% is achieved, outperforming prominent catalysts reported in electrocatalysis. The synergetic combination of the unique nanostructures and their advanced spatial configuration is proposed to be responsible for the facet-oriented SnO2 with a hierarchical structure, providing fully exposed active sites and facilitating mass and charge transfers. Enhanced mass transfer in the hollow fiber electrode verified by electrochemical measurements and well-retained Sn4+ species confirmed by in situ spectroscopy synergistically boost the high CO2 conversion activity. In situ spectroscopy and theoretical calculation results demonstrate that the SnO2(101) facet favors ∗OCHO intermediate formation and ∗HCOOH desorption, leading to high formate selectivity. This study provides a straightforward approach to the precise fabrication of composite hollow fiber electrodes, enabling highly efficient electrocatalytic reactions with gas molecules.

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来源期刊
The Innovation
The Innovation MULTIDISCIPLINARY SCIENCES-
CiteScore
38.30
自引率
1.20%
发文量
134
审稿时长
6 weeks
期刊介绍: The Innovation is an interdisciplinary journal that aims to promote scientific application. It publishes cutting-edge research and high-quality reviews in various scientific disciplines, including physics, chemistry, materials, nanotechnology, biology, translational medicine, geoscience, and engineering. The journal adheres to the peer review and publishing standards of Cell Press journals. The Innovation is committed to serving scientists and the public. It aims to publish significant advances promptly and provides a transparent exchange platform. The journal also strives to efficiently promote the translation from scientific discovery to technological achievements and rapidly disseminate scientific findings worldwide. Indexed in the following databases, The Innovation has visibility in Scopus, Directory of Open Access Journals (DOAJ), Web of Science, Emerging Sources Citation Index (ESCI), PubMed Central, Compendex (previously Ei index), INSPEC, and CABI A&I.
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