催化作用
材料科学
燃料电池
组合化学
金属间化合物
结构母题
纳米技术
超晶格
离子交换
氢
密度泛函理论
工作(物理)
离子
质子交换膜燃料电池
3D打印
相容性(地球化学)
氧还原反应
化学
拓扑(电路)
作者
Xin Wang,Kang Liao,Wanqing Song,Yixiao Zou,Wenda Chen,Peng Cui,Sheng Zhao,Jinfeng Zhang,Jia Ding,Wenbin Hu,Xiaopeng Han
摘要
ABSTRACT Hydrogen oxidation reaction (HOR) in alkaline media suffers from multiple challenges of sluggish kinetics, CO poisoning, and active‐site degradation. Multi‐metallic catalysts with multiple active sites hold promise for addressing the issues; however, they are thwarted by structural heterogeneity at the atomic level and reliance on empirical trial‐and‐error screening. Herein, we introduce a novel functional motif directed decoupling‐recoupling strategy for the design of multi‐site catalysts capable of super‐active and durable HOR electrocatalysis. Leveraging the well‐defined atomic coordinates for each element and superlattice ordering structure of the PtM intermetallic compound (IMC), the development of a multi‐functional Pt‐based HOR catalyst is decoupled into the independent screening of discrete Pt–M functional motifs. These optimally selected Pt–M motifs were subsequently recoupled into an L1 0 ‐PtFe framework, constructing the designed PtRuFeGaMo‐I catalyst. PtRuFeGaMo‐I integrates the multifunctionality of Pt–Ru/Ga/Mo motifs to simultaneously overcome the key limitations of alkaline HOR. Consequently, the engineered PtRuFeGaMo‐I exhibits exceptional HOR performance. In an anion exchange membrane fuel cell (AEMFC), PtRuFeGaMo‐I achieves a remarkable mass activity of 0.84 A mg total PGM −1 , surpassing commercial Pt/C and most reported noble‐metal‐based catalysts. This work provides a new platform to design advanced catalysts tailored to diverse electrocatalytic demands.
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