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孔结构工程硬模板合成:开启Fe-N@C电催化剂的高氧还原反应活性和稳定性

Pore structure engineering hard-template synthesis: unlocking the high oxygen reduction reaction activity and stability of Fe-N@C electrocatalysts.

作者信息

Gianola Giulia, Lourenço Mirtha A O, Basile Luca, Morais Tiago, Mafra Luís, Pirri Candido, Specchia Stefania, Zeng Juqin

机构信息

Department of Applied Science and Technology (DISAT), Politecnico di Torino, Turin, Italy.

Istituto Italiano di Tecnologia - IIT, Center for Sustainable Future Technologies (CSFT), Turin, Italy.

出版信息

Nanoscale Horiz. 2025 Aug 21;10(9):1975-1987. doi: 10.1039/d5nh00300h.

DOI:10.1039/d5nh00300h
PMID:40569258
Abstract

Developing efficient and durable iron-nitrogen-carbon (Fe-N@C) electrocatalysts with optimal pore architecture is crucial for advancing the oxygen reduction reaction (ORR) in fuel cells. In this study, we demonstrate how hard-templating with tailored silica scaffolds (SBA-15, KIT-6, and a dual SBA-15/KIT-6 template) can tune the pore structure of Fe-N@C materials. In these materials, the pore structure influences the formation and accessibility of active sites for the ORR. The mesoporous Fe-N@CMK-3 electrocatalyst, derived from SBA-15, exhibits the highest ORR activity (onset potential: 0.99 V in alkaline media, and 0.82 V in acid) due to its well-defined 2D hexagonal pores, which facilitate efficient oxygen diffusion. In contrast, the microporous Fe-N@CMK-8 (KIT-6-derived) exhibits lower ORR activity due to limited oxygen accessibility to the active sites. The dual-templated Fe-N@CMK-3/8 combines micro/mesoporosity to deliver balanced performance despite its lower surface area and pore volume resulting from the pore connectivity. All electrocatalysts initially follow a quasi-4e ORR pathway, but their behavior changes during the long-term testing: Fe-N@CMK-8 shifts to the 2e pathway despite its notably durable activity in acidic media; Fe-N@CMK-3 exhibits the best stability in terms of activity under alkaline conditions also with a slight shift to the 2e pathway; Fe-N@CMK-3/8 excels in terms of selectivity sustaining a 4e pathway along time with medium stability in the activity in both acid and alkaline media. These findings establish pore engineering as a powerful tool to tailor Fe-N@C electrocatalysts for specific operational environments, contributing to the development of high-performance non-precious metal catalysts for the ORR in proton exchange membrane and alkaline fuel cell applications.

摘要

开发具有最佳孔结构的高效耐用的铁氮碳(Fe-N@C)电催化剂对于推动燃料电池中的氧还原反应(ORR)至关重要。在本研究中,我们展示了如何使用定制的二氧化硅支架(SBA-15、KIT-6和双SBA-15/KIT-6模板)进行硬模板法来调节Fe-N@C材料的孔结构。在这些材料中,孔结构影响ORR活性位点的形成和可及性。源自SBA-15的介孔Fe-N@CMK-3电催化剂表现出最高的ORR活性(起始电位:在碱性介质中为0.99 V,在酸性介质中为0.82 V),这归因于其明确的二维六方孔,有利于高效的氧扩散。相比之下,微孔Fe-N@CMK-8(源自KIT-6)由于活性位点的氧可及性有限,表现出较低的ORR活性。双模板化的Fe-N@CMK-3/8结合了微孔/介孔结构,尽管由于孔连通性导致其表面积和孔体积较低,但仍能提供平衡的性能。所有电催化剂最初都遵循准4e ORR途径,但它们在长期测试中的行为会发生变化:Fe-N@CMK-8尽管在酸性介质中具有显著的持久活性,但会转变为2e途径;Fe-N@CMK-3在碱性条件下的活性稳定性最佳,也略有向2e途径的转变;Fe-N@CMK-3/8在选择性方面表现出色,在酸性和碱性介质中都能长时间维持4e途径,活性稳定性中等。这些发现确立了孔工程作为一种强大的工具,可针对特定操作环境定制Fe-N@C电催化剂,有助于开发用于质子交换膜和碱性燃料电池应用中ORR的高性能非贵金属催化剂。

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