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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Oxidation of formic acid on the Pt(111) surface in the gas phase
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Oxidation of formic acid on the Pt(111) surface in the gas phase

机译:气相中Pt(111)表面上甲酸的氧化

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Formic acid (HCOOH) oxidation on Pt(111) under gas-phase conditions is a benchmark heterogeneous catalysis reaction used to probe electro-catalytic HCOOH conversion in fuel cells, itself an important reaction in energy conversion. We used density functional theory (DFT) calculations to elucidate the fundamental oxidation mechanisms of HCOOH in the gas phase, determining the relative strengths of chemical interactions between HCOOH oxidation intermediates and the Pt(111) surface. We focused on investigating how water and adsorption coverage affects reaction intermediate structures and transition states. Our results show that adsorbed HCOO is a reactive intermediate in gas phase, and co-adsorbed water plays a key role in HCOOH oxidation influencing the structure of reaction intermediates and reaction barriers on Pt(111). The simulations show the preferred catalytic pathway is qualitatively dependent on surface coverage. These results provide a conceptual basis to better interpret its complicated experimental reaction kinetics.
机译:气相条件下Pt(111)上的甲酸(HCOOH)氧化是基准非均相催化反应,用于探测燃料电池中电催化HCOOH的转化,它本身是能量转化中的重要反应。我们使用密度泛函理论(DFT)计算来阐明HCOOH在气相中的基本氧化机理,确定HCOOH氧化中间体与Pt(111)表面之间化学相互作用的相对强度。我们专注于研究水和吸附的覆盖范围如何影响反应中间结构和过渡态。我们的结果表明,吸附的HCOO是气相的反应性中间体,而共吸附的水在HCOOH氧化中起关键作用,影响Pt(111)上的反应中间体和反应屏障的结构。模拟表明,优选的催化途径在质量上取决于表面覆盖率。这些结果为更好地解释其复杂的实验反应动力学提供了理论基础。

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