Dense Platinum Nanoparticles Confined in Mn-N-C Nanocages for Robust Heavy-Duty PEMFCs

High-loading Pt cathodes are essential for heavy-duty proton exchange membrane fuel cells but suffer from a critical tradeoff between ionomer sulfonate poisoning and nanoparticle instability. Herein, we report a spatial confinement strategy to encapsulate dense Pt nanoparticles (~51.8 wt%) within Mn/N-co-doped mesoporous carbon nanocages (denoted as Pt-MnNC). This architecture excludes bulky ionomers to create an ionomer-shielded environment against sulfonate poisoning, while Mn-Nx-mediated strong metal-support interactions anchor the Pt nanoparticles to prevent agglomeration and further boost durability. In the 5 × 5 cm2 membrane electrode assembly tests, the Pt-MnNC catalyst delivers an exceptional power density of 1.26 W·cm–2 at 2.0 A·cm–2 under high-humidity condition. Notably, it exhibits superior durability with only a 20.8% mass activity loss after 30,000 cycles, significantly outperforming commercial Pt/C, which suffers a 61.6% loss. This work provides a robust pathway to decouple ionomer poisoning from catalyst loading, advancing the development of high-power, durable heavy-duty fuel cells.

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Publication Details

Journal
Journal of Electrochemistry
Published
2026-09-25
DOI
https://doi.org/10.61558/2993-074x.3618
Primary Topic
Fuel Cells and Related Materials
Type
article
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Dense Platinum Nanoparticles Confined in Mn-N-C Nanocages for Robust Heavy-Duty PEMFCs

Jia-Yu Zuo, Qiao Hong-yan, Mingliang Yang, Jun song Chen et al.
Journal of Electrochemistry
Fuel Cells and Related Materials
article

Dense Platinum Nanoparticles Confined in Mn-N-C Nanocages for Robust Heavy-Duty PEMFCs

Jia-Yu Zuo, Qiao Hong-yan, Mingliang Yang, Jun song Chen, Rui Wu, Lei Zhao, Zhen-Min Cao
article en

Abstract

High-loading Pt cathodes are essential for heavy-duty proton exchange membrane fuel cells but suffer from a critical tradeoff between ionomer sulfonate poisoning and nanoparticle instability. Herein, we report a spatial confinement strategy to encapsulate dense Pt nanoparticles (~51.8 wt%) within Mn/N-co-doped mesoporous carbon nanocages (denoted as Pt-MnNC). This architecture excludes bulky ionomers to create an ionomer-shielded environment against sulfonate poisoning, while Mn-Nx-mediated strong metal-support interactions anchor the Pt nanoparticles to prevent agglomeration and further boost durability. In the 5 × 5 cm2 membrane electrode assembly tests, the Pt-MnNC catalyst delivers an exceptional power density of 1.26 W·cm–2 at 2.0 A·cm–2 under high-humidity condition. Notably, it exhibits superior durability with only a 20.8% mass activity loss after 30,000 cycles, significantly outperforming commercial Pt/C, which suffers a 61.6% loss. This work provides a robust pathway to decouple ionomer poisoning from catalyst loading, advancing the development of high-power, durable heavy-duty fuel cells.

Journal of ElectrochemistryVol. 32(9)
University of Electronic Science and Technology of China (CN), Chengdu University of Information Technology (CN), Chengdu University of Technology (CN), Chengdu University (CN)
Openalex Percentile: Top 21%
Fuel Cells and Related Materials
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Dense Platinum Nanoparticles Confined in Mn-N-C Nanocages for Robust Heavy-Duty PEMFCs — Jia-Yu Zuo, Qiao Hong-yan, et al. · Journal of Electrochemistry (2026) | TGRS Research Map | TGRS