铂金
雷亚克夫
催化作用
氧化物
材料科学
电化学
铂纳米粒子
纳米颗粒
化学物理
密度泛函理论
化学工程
分子动力学
电极
纳米技术
化学
计算化学
物理化学
有机化学
冶金
工程类
原子间势
作者
Björn Kirchhoff,Laura Braunwarth,Christoph Jung,Hannes Jónsson,Donato Fantauzzi,Timo Jacob
出处
期刊:Small
[Wiley]
日期:2019-12-26
卷期号:16 (5)
被引量:39
标识
DOI:10.1002/smll.201905159
摘要
Improved understanding of the fundamental processes leading to degradation of platinum nanoparticle electrocatalysts is essential to the continued advancement of their catalytic activity and stability. To this end, the oxidation of platinum nanoparticles is simulated using a ReaxFF reactive force field within a grand-canonical Monte Carlo scheme. 2-4 nm cuboctahedral particles serve as model systems, for which electrochemical potential-dependent phase diagrams are constructed from the thermodynamically most stable oxide structures, including solvation and thermochemical contributions. Calculations in this study suggest that surface oxide structures should become thermodynamically stable at voltages around 0.80-0.85 V versus standard hydrogen electrode, which corresponds to typical fuel cell operating conditions. The potential presence of a surface oxide during catalysis is usually not accounted for in theoretical studies of Pt electrocatalysts. Beyond 1.1 V, fragmentation of the catalyst particles into [Pt6 O8 ]4- clusters is observed. Density functional theory calculations confirm that [Pt6 O8 ]4- is indeed stable and hydrophilic. These results suggest that the formation of [Pt6 O8 ]4- may play an important role in platinum catalyst degradation as well as the electromotoric transport of Pt2+/4+ ions in fuel cells.
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