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首页> 外文期刊>Faraday discussions >Fate of methanol molecule sandwiched between hydrogen-terminated diamond-like carbon films by tribochemical reactions: tight-binding quantum chemical molecular dynamics study
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Fate of methanol molecule sandwiched between hydrogen-terminated diamond-like carbon films by tribochemical reactions: tight-binding quantum chemical molecular dynamics study

机译:通过摩擦化学反应将甲醇分子的命运夹在氢封端的类金刚石碳膜之间:紧密结合的量子化学分子动力学研究

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摘要

Recently, much attention has been given to diamond-like carbon (DLC) as a solid-state lubricant, because it exhibits high resistance to wear, low friction and low abrasion. Experimentally it is reported that gas environments are very important for improving the tribological characteristics of DLC films. Recently one of the authors in the present paper, J.-M. Martin, experimentally observed that the low friction of DLC films is realized under alcohol environments. In the present paper, we aim to clarify the low-friction mechanism of the DLC films under methanol environments by using our tight-binding quantum chemical molecular dynamics method. We constructed the simulation model in which one methanol molecule is sandwiched between two hydrogen-terminated DLC films. Then, we performed sliding simulations of the DLC films. We observed the chemical reaction of the methanol molecule under sliding conditions. The methanol molecule decomposed and then OH-termination of the DLC was realized and the CH_3 species was incorporated into the DLC film. We already reported that the OH-terminated DLC film is very effective to achieve good low-friction properties under high pressure conditions, compared to H-terminated DLC films. Here, we suggest that methanol environments are very effective to realize the OH-termination of DLC films which leads to the good low-friction properties.
机译:近年来,由于类金刚石碳(DLC)具有高耐磨性,低摩擦性和低磨损性,因此作为一种固态润滑剂已受到了广泛关注。据实验报道,气体环境对于改善DLC薄膜的摩擦学特性非常重要。最近,本论文的一位作者,J.-M。马丁(Martin)在实验中观察到DLC膜的低摩擦是在酒精环境下实现的。本文旨在通过紧密结合的量子化学分子动力学方法阐明甲醇环境下DLC薄膜的低摩擦机理。我们构建了一个模拟模型,其中一个甲醇分子夹在两个氢封端的DLC膜之间。然后,我们对DLC膜进行了滑动模拟。我们观察到在滑动条件下甲醇分子的化学反应。甲醇分子分解,然后实现了DLC的OH封端,并将CH_3物种结合到DLC膜中。我们已经报道过,与H端接的DLC膜相比,OH端接的DLC膜在高压条件下非常有效地实现良好的低摩擦性能。在这里,我们建议甲醇环境对于实现DLC薄膜的OH端接非常有效,这导致了良好的低摩擦性能。

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