金属间化合物
材料科学
催化作用
氧气
合金
表面应力
质子交换膜燃料电池
拉伤
解吸
化学工程
复合材料
物理化学
化学
有机化学
内科学
工程类
吸附
医学
表面能
作者
Renjie Gui,Cheng Han,Minghao Wang,Xiaolin Tai,Huijuan Zhang,Congyan Liu,Xuemin Cao,Chen Chen,Min Ge,Huijuan Wang,Xusheng Zheng,Wangsheng Chu,Yue Lin,Yi Xie,Changzheng Wu
标识
DOI:10.1002/adma.202307661
摘要
Abstract Pt‐based fuel cell catalysts with excellent activity and stability for proton‐exchange membrane fuel cells (PEMFCs) have been developed through strain regulation in recent years. Herein, this work demonstrates that symmetry‐induced strain regulation of Pt surface of PtGa intermetallic compounds can greatly enhance the catalytic performance of the oxygen reduction reaction (ORR). With the strain environment varies derived from the lattice mismatch of analogous PtGa core but different symmetry, the Pt surface of the PtGa alloy and the Pt 3 Ga (Pm m) precisely realize 0.58% and 2.7% compressive strain compared to the Pt 3 Ga (P4/mmm) . Experimental and theoretical results reveal that when the compressive stress of the Pt lattice increases, the desorption process of O* intermediates becomes accelerated, which is conducive to oxygen reduction. The Pt 3 Ga (Pm m) with high symmetry and compressive Pt surface exhibit the highest mass and specific activities of 2.18 A mg Pt −1 and 5.36 mA cm −2 , respectively, which are more than one order of magnitude higher than those of commercial Pt/C catalysts. This work demonstrates that material symmetry can be used to precisely modulate Pt surface stress to enhance the ORR, as well as provide a distinct platform to investigate the relationship between Pt compressibility and catalytic activity.
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