Dual Anchoring Effect Achieves Active and Ultrastable Oxygen Reduction Catalysis

ABSTRACT Suppressing the dissolution of transition metals in multi‐component platinum (Pt)‐based oxygen reduction reaction (ORR) catalysts is critical yet challenging for proton exchange membrane fuel cell (PEMFC). Herein, we employ a dual anchoring strategy of rare earth (RE) surface stabilization and metal‐nitrogen‐carbon (MNC) interaction with porous Pt‐nickel‐cobalt nanowires (PtNiCo PNWs) to achieve satisfactory ORR and membrane electrode assembly (MEA) performances. The single site and cluster of praseodymium (Pr) tune the Pt electronic structure and protect the Ni/Co sites from dissolution, while zinc‐N‐C (ZnNC) provides extra active sites and stronger anchoring effect, yielding 9.0/9.5 times higher than those of commercial Pt/C in ORR mass and specific activities. Furthermore, the MEA exhibits high peak power density of 2.33 W cm −2 , mass activity of 0.79 A mg Pt −1 at 0.9 V iR‐free and long‐term lifetime of operating 30000/90000 cycles with 8.2%/28.3% decay, further reflecting our reasonable design conception of Pt‐based ORR catalysts for PEMFC device.

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Publication Details

Journal
Advanced Energy Materials
Published
2026-09-22
DOI
https://doi.org/10.1002/aenm.71606
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
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article

Dual Anchoring Effect Achieves Active and Ultrastable Oxygen Reduction Catalysis

Lingzheng Bu, Kezhu Jiang, Xing Hu, Jie Song et al.
Advanced Energy Materials
Electrocatalysts for Energy Conversion
article

Dual Anchoring Effect Achieves Active and Ultrastable Oxygen Reduction Catalysis

Lingzheng Bu, Kezhu Jiang, Xing Hu, Jie Song, Shize Geng, Hong Xin, Suke Yang
article en

Abstract

ABSTRACT Suppressing the dissolution of transition metals in multi‐component platinum (Pt)‐based oxygen reduction reaction (ORR) catalysts is critical yet challenging for proton exchange membrane fuel cell (PEMFC). Herein, we employ a dual anchoring strategy of rare earth (RE) surface stabilization and metal‐nitrogen‐carbon (MNC) interaction with porous Pt‐nickel‐cobalt nanowires (PtNiCo PNWs) to achieve satisfactory ORR and membrane electrode assembly (MEA) performances. The single site and cluster of praseodymium (Pr) tune the Pt electronic structure and protect the Ni/Co sites from dissolution, while zinc‐N‐C (ZnNC) provides extra active sites and stronger anchoring effect, yielding 9.0/9.5 times higher than those of commercial Pt/C in ORR mass and specific activities. Furthermore, the MEA exhibits high peak power density of 2.33 W cm −2 , mass activity of 0.79 A mg Pt −1 at 0.9 V iR‐free and long‐term lifetime of operating 30000/90000 cycles with 8.2%/28.3% decay, further reflecting our reasonable design conception of Pt‐based ORR catalysts for PEMFC device.

Advanced Energy Materials
Hebei University of Technology (CN), Xiamen University (CN), Weifang University (CN)
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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