脱氢
材料科学
催化作用
价(化学)
合金
密度泛函理论
金属
面(心理学)
Atom(片上系统)
氨
化学物理
电催化剂
纳米晶
光化学
结晶学
电子结构
Crystal(编程语言)
氧化态
价电子
双金属片
原子轨道
联轴节(管道)
无机化学
物理化学
铂金
离解(化学)
作者
Jianan Su,JinMing Wang,JinMing Wang,Zhiqi Wang,Tae Kyu Kim,Jun-Jie Wang,Jun-Jie Wang
标识
DOI:10.1002/adfm.202519518
摘要
Abstract The Pt (100) facet of platinum‐based alloys exhibits high potential in ammonia oxidation reaction (AOR) but is still a huge bottleneck in activity enhancement due to the sluggish NH x ‐dehydrogenation kinetics. Herein, a local‐disordered PtCu alloy (d‐PtCu), with an increasing low‐valence‐platinum ratio on the (100) facet, is engineered to atomically boost AOR dehydrogenation behavior. Both in situ experimental and computational results demonstrate that substituting Pt atoms with Cu induces the formation of low‐valence Pt δ− sites and strongly oxidized Cu δ+ species on the (100) facet for electronic redistribution. Benefiting from such enriched low‐valence‐platinum sites, d‐PtCu/C possesses the strong asymmetric gradient orbital coupling between Pt_5d, Cu_3d, and NH 2 intermediates, and ultrafast NH 2 dehydrogenation at heteroatomic PtCu sites. As a result, at 0.64 V (vs RHE), the d‐PtCu/C catalyst achieves a peak AOR current density of 294.4 A g Pt −1 , which is 1.7 and 1.9‐fold higher than those of ordered PtCu/C (169.9 A g Pt −1 ) and Pt/C (158.9 A g Pt −1 ), respectively. Notably, DAFCs equipped with this electrocatalyst demonstrate a record high peak power density per gram of Pt metal (122 mW mg Pt −1 ) at 40 °C. This work unveils a comprehensive atomic mechanism of introducing local disorder in alloys based on valence state engineering for developing efficient AOR electrocatalysts.
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