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Gd-doped Pt3Co Nanoparticles Embedded in Hollow Mesoporous Carbon Derived From Space-Confined Polymerization of Indene Boosting Oxygen Reduction Reaction

delete2025-03-10
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PRE
AI
Y
Yadong Li
陈阳 cover
陈阳 (Chen Yang)
X
Xilong Wang
郭振 (Zhen Guo)
程军 (Jun Cheng)
DOI:10.1002/smll.202412424delete
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Abstract

Abstract

En 中文
Developing suitable carbon supports and efficient Pt-based nanoparticles for the oxygen reduction reaction (ORR) is crucial for accelerating the commercialization of proton-exchange membrane fuel cells (PEMFCs). In this study, indene-derived hollow mesoporous carbon spheres are synthesized for the first time using space-confined polymerization and subsequent annealing. The incorporation of Gd-doped Pt3Co nanoparticles into the hollow mesoporous carbon spheres (Gd-Pt3Co@HMS) resulted in catalysts with an impressive mass activity (MA) of 1.83 A mg(Pt)(-1) at 0.9 V. The Gd-Pt3Co@HMS catalyst exhibits excellent durability, as indicated by the minimal change in its E-1/2 after 30,000 cycles. In a hydrogen-oxygen full cell, the membrane electrode assembly (MEA) with the Gd-Pt3Co@HMS catalyst achieves a current density of 1.44 A cm(-2) at 0.6 V and a peak power density of 1.4 W cm(-2). This enhancement is attributed to the increased binding strength of the Pt & horbar;O bond on Gd-Pt3Co (111), which results in a notable reduction in Delta EO. Additionally, the optimization of surface energy due to Gd doping contributes to the outstanding durability of the catalysts during the ORR. This research presents a novel method for developing efficient and stable oxygen reduction catalysts and has significant implications for next-generation fuel cell applications.
Keywords:
Gd-doped Pt3Co alloy
Indene
mesoporous carbon
oxygen reduction reaction
proton-exchange membrane fuel cells
space-confined polymerization

Journal

Small cover
Small
IF:
12.1
Papers:
3.0W
Citations:
16.4W

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