质子交换膜燃料电池
金属间化合物
气凝胶
锡
材料科学
电催化剂
催化作用
化学工程
溶解
双金属片
纳米颗粒
碳纤维
阴极
无机化学
阳极
氧气
金属
功率密度
兴奋剂
铂金
催化重整
直接乙醇燃料电池
钯
作者
Ke Li,Yi Luo,Yuzhou Jiao,Yulong Chen,Zemin Zheng,Gang Yu,Jinliang Hu,Shengli Chen
出处
期刊:eScience
[Elsevier BV]
日期:2026-02-01
卷期号:: 100557-100557
标识
DOI:10.1016/j.esci.2026.100557
摘要
High energy density makes proton exchange membrane fuel cells (PEMFCs) prime candidates for clean power in heavy-duty vehicles (HDVs); yet the extended life of HDVs imposes stringent demands on the durability of the oxygen reduction reaction (ORR) catalyst. Herein, a TiN hybridized FeNC aerogel is designed as a multifunctional support to synthesize a highly active and stable ORR catalyst. The unique design features: (i) TiN and Fe–N x moieties acting as dual anchors and precursors, enabling anti-sintering formation of Ti–doped Pt 3 Fe intermetallic nanoparticles at 1000 °C; (ii) Ti doping increasing the vacancy formation energy of Fe and Pt, thereby suppressing metal dissolution; (iii) TiN scavenging peroxide intermediates to mitigate the Fenton reaction-induced carbon corrosion; and (iv) an interconnected aerogel structure facilitating efficient mass transport. The resulting catalyst achieves a remarkable peak power density of 2.25 W/cm 2 at an ultralow Pt loading of 0.075 mg Pt /cm 2 with no performance loss after 30,000 cycles. It also retains 100% mass activity after 1,100,000 RDE cycles, and maintains structural integrity with 1.85 W/cm 2 peak power density after 150,000 PEMFC cycles, where a minor 30 mV voltage loss at 0.80 A/cm 2 is attributed to ionomer degradation. This multi-factorial stabilization strategy unlocks a pathway to ultradurable PEMFCs for HDVs at ultralow Pt loadings. • Ti-doped Pt 3 Fe intermetallic on TiN–FeNC aerogel achieves a record 2.25 W/cm 2 at 0.075 mg pt /cm 2 Pt loading. • Ti doping suppresses metal dissolution and TiN scavenges radicals, yielding <0.2% H 2 O 2 after 1100 kilocycles. • The catalyst shows no loss after 30 kilocycles and retains ∼84% power after 150 kilocycles in H 2 –O 2 fuel cell, exceeding 2030 DOE targets.
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