附加氮源对酸性介质中氧还原反应中酞菁铁基纳米碳催化剂的影响

IF 4.7 3区 工程技术 Q2 ELECTROCHEMISTRY
Yogesh Kumar , Elo Kibena-Põldsepp , Srinu Akula , Jekaterina Kozlova , Arvo Kikas , Jaan Aruväli , Vambola Kisand , Kaupo Kukli , Kaido Tammeveski
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引用次数: 0

摘要

过渡金属掺杂催化剂的发展重点在于取代燃料电池中的铂族金属催化剂。然而,这些非贵金属催化剂在酸性环境下的氧还原反应(ORR)中由于金属团聚和随后的活性位点损失等问题表现出有限的性能。本文中,我们在由碳化物衍生碳(CDC)和石墨烯(G)组成的复合材料上合成了掺杂铁和氮的催化剂,使用额外的氮源双氰胺(DCDA),标记为FeN-CDC/G/DCDA。我们的理化分析表明,DCDA的加入有效地减轻了合成过程中的金属团聚,并增加了催化剂中Fe-Nx位点的存在。值得注意的是,当半波电位(E1/2)为0.76 V时,FeN-CDC/G/DCDA催化剂在酸性介质中的ORR活性增强,超过了E1/2为0.70 V的FeN-CDC/G催化剂。此外,旋转环盘电极结果表明,当使用FeN-CDC/G/DCDA催化剂时,过氧化氢的形成减少。这项研究的发现代表了燃料电池高效催化剂发展的重要一步,强调了额外氮掺杂的关键作用及其对ORR性能的积极影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The effect of additional nitrogen source on iron phthalocyanine-based nanocarbon catalysts for oxygen reduction reaction in acidic media

The focus in the development of catalysts doped with transition metals aims to replace platinum group metal catalysts in fuel cells. However, these non-precious metal catalysts exhibit limited performance in acidic environment for the oxygen reduction reaction (ORR) due to issues such as metal agglomeration and the subsequent loss of active sites. Herein, we synthesised catalysts doped with iron and nitrogen on a composite material consisting of carbide-derived carbon (CDC) and graphene (G), employing an additional nitrogen source dicyandiamide (DCDA), denoted as FeN-CDC/G/DCDA. Our physico-chemical analysis unveiled that the inclusion of DCDA was effective in mitigating metal agglomeration during the synthesis process and increasing the presence of Fe-Nx sites in the catalysts. Notably, the FeN-CDC/G/DCDA catalyst exhibited enhanced ORR activity in acid media with half-wave potential (E1/2) of 0.76 V, surpassing the performance of the FeN-CDC/G catalyst, which had an E1/2 value of 0.70 V. Furthermore, the rotating ring-disk electrode results indicated a reduced formation of hydrogen peroxide when employing the FeN-CDC/G/DCDA catalyst. The findings from this study represent a significant step towards the development of efficient catalysts for fuel cells, underscoring the pivotal role of additional nitrogen doping and its positive impact on the ORR performance.

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来源期刊
Electrochemistry Communications
Electrochemistry Communications 工程技术-电化学
CiteScore
8.50
自引率
3.70%
发文量
160
审稿时长
1.2 months
期刊介绍: Electrochemistry Communications is an open access journal providing fast dissemination of short communications, full communications and mini reviews covering the whole field of electrochemistry which merit urgent publication. Short communications are limited to a maximum of 20,000 characters (including spaces) while full communications and mini reviews are limited to 25,000 characters (including spaces). Supplementary information is permitted for full communications and mini reviews but not for short communications. We aim to be the fastest journal in electrochemistry for these types of papers.
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