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Dual-nitrogen coordination engineering enables porous carbon-confined Pt-FeN4 atomic interfaces for durable, low-Pt PEM fuel cells

 
cris.virtual.department#PLACEHOLDER_PARENT_METADATA_VALUE#
cris.virtual.orcid#PLACEHOLDER_PARENT_METADATA_VALUE#
cris.virtualsource.department3e6bdb28-01ee-4d90-9f47-ee4353de3e26
cris.virtualsource.orcid3e6bdb28-01ee-4d90-9f47-ee4353de3e26
dc.contributor.authorXu, Xiaoqian
dc.contributor.authorXu, Nengneng
dc.contributor.authorCao, Qin
dc.contributor.authorGuo, Yuheng
dc.contributor.authorLi, Meng
dc.contributor.authorLiu, Yuhao
dc.contributor.authorLi, Yawei
dc.contributor.authorLiu, Guicheng
dc.contributor.authorYang, Woochul
dc.contributor.authorKim, Jong Min
dc.contributor.authorSafari, Momo
dc.contributor.authorQiao, Jinli
dc.date.accessioned2026-09-02T10:12:17Z
dc.date.available2026-09-02T10:12:17Z
dc.date.createdwos2026
dc.date.issued2026
dc.description.abstractDesigning low-Pt catalysts with both high intrinsic activity and long-term durability remains a central challenge for proton exchange membrane fuel cells (PEMFCs). Here, we report a dual‑nitrogen coordination strategy that simultaneously optimizes the electronic structure and structural stability of Pt/Fe-N-C catalysts. We precisely modulate the Fesingle bondN coordination environment and electronic interaction between Pt and FeN4 sites, effectively increasing the proportion of pyridine nitrogen and metal nitrogen. This dual‑nitrogen design enables strong Pt-FeN4 interfacial coupling, optimizes the adsorption strength of reaction intermediates (OH*), promotes homogeneous metal dispersion, and creates a hierarchically porous carbon framework that enhances oxygen intermediates transport and active-site exposure. As a result, the optimized 40A-PtFe-CN catalyst achieves a half-wave potential of 0.923 V and a mass activity of 0.644 A mgPt−1 for the oxygen reduction reaction (ORR), exceeding that of commercial Pt/C. Moreover, the tailored electronic structure effectively suppresses H2O2 formation and mitigates Fe demetallation, delivering superior long-term durability. When used as the cathode in a PEMFC, it attains a peak power density of 1.51 W cm−2 at 80 °C. This work establishes a mechanistic framework in which nitrogen coordination engineering governs metal-support electronic coupling, offering a general approach for developing atomically precise, low-Pt catalysts with integrated activity and stability.
dc.description.wosFundingTextThis work is financially supported by the National Key Research and Development Program of China (2022YFE0138900) , National Natural Science Foundation of China (21972017) , Shanghai Sailing Program (22YF1400700) and the Chenguang Program of Shanghai Education Development Foundation and Shanghai Municipal Education Commission (22CGA37) , and the National Research Foundation of Korea (NRF) grant funded by the Korean government (MSIT) (No. RS-2022-NR066713) .
dc.identifier.doi10.1016/j.cej.2026.177806
dc.identifier.issn1385-8947
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/60187
dc.language.isoeng
dc.provenance.editstepusergreet.vanhoof@imec.be
dc.publisherELSEVIER SCIENCE SA
dc.source.beginpage177806
dc.source.journalCHEMICAL ENGINEERING JOURNAL
dc.source.numberofpages10
dc.source.volume541
dc.subject.keywordsOXYGEN REDUCTION REACTION
dc.subject.keywordsN-DOPED CARBON
dc.subject.keywordsNANOPARTICLES
dc.subject.keywordsELECTROCATALYSTS
dc.subject.keywordsGRAPHENE
dc.subject.keywordsSITES
dc.subject.keywordsPERFORMANCE
dc.subject.keywordsDURABILITY
dc.subject.keywordsEVOLUTION
dc.subject.keywordsCATALYSTS
dc.title

Dual-nitrogen coordination engineering enables porous carbon-confined Pt-FeN4 atomic interfaces for durable, low-Pt PEM fuel cells

dc.typeJournal article
dspace.entity.typePublication
imec.internal.crawledAt2026-07-14
imec.internal.sourcecrawler
imec.internal.wosCreatedAt2026-07-14
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