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Nature of adhesion of condensed organic films on platinum by first-principles simulations

机译:通过第一性原理模拟冷凝有机薄膜在铂上的粘附性质

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Understanding the nature of the adhesion of an organic liquid on a metal surface is of paramount importance for elucidating the stability and chemical reactivity at these complex interfaces. However, to date, the morphology, layering and chemical properties at organic liquid metal interfaces have been rarely known. Using semi-empirical dispersion corrected density functional theory calculations and ab initio molecular dynamics simulations, we show that carbon tetrachloride and ethanol films confined to a platinum surface alter their intrinsic properties and exhibit interfacial reactivity. A few interface carbon tetrachloride (ethanol) molecules adsorb dissociatively (molecularly) on platinum thanks to the surrounding medium. The adsorption strength of the interfacial molecules is consequently increased in the condensed phase as compared to the gas phase. This remarkable effect is rationalized by an interaction energy decomposition model and an electrostatic potential analysis.
机译:理解有机液体在金属表面上的粘附性质对于阐明这些复杂界面的稳定性和化学反应性至关重要。然而,迄今为止,在有机液态金属界面处的形态,分层和化学性质还鲜为人知。使用半经验弥散校正的密度泛函理论计算和从头算分子动力学模拟,我们表明,限制在铂表面上的四氯化碳和乙醇膜会改变其固有性质并表现出界面反应性。由于周围的介质,一些界面的四氯化碳(乙醇)分子解离地(分子地)吸附在铂上。因此,与气相相比,在冷凝相中界面分子的吸附强度增加。通过相互作用能分解模型和静电势分析可以使这种显着效果合理化。

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