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A Quantum Chemical Study of the Unimolecular Decomposition Mechanisms of Zinc Dialkyldithiophosphate Antiwear Additives

机译:二烷基二硫代磷酸锌抗磨添加剂单分子分解机理的量子化学研究

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Density functional theory calculations were applied to study a set of isomerization and decomposition reactions that zinc dialkyldithiophosphate (ZDDP) engine oil antiwear additives may take part in.The products of these reactions comprise a set of chemical species that can lead to the formation of poly(thio)phosphate films that are thought to be responsible for the antiwear protection offered by ZDDPs.The specific reactions examined involved either intramolecular alkyl group transfer within ZDDP or the intramolecular elimination of olefins from this molecule.A series of substituents were employed to examine how the nature of the substituent on the ZDDP molecule affects the thermodynamic and mechanistic details of these reactions,which in turns may have ramifications regarding various aspects of antiwear film formation.It was found that qualitative and quantitative aspects of these reactions were markedly different when hydrogen atoms were used as substituents instead of alkyl groups.The details of the reactions for the H-substituted system indicated that the precursors to the antiwear films should not be formed.When alkyl groups were employed as substituents,the energetic details of the reactions considered in this study exhibited a dependence upon the nature of these groups.An examination of these details revealed that straight-chained primary alkyl ZDDPs should decompose through reactions involving alkyl group transfer,while secondary and branched primary alkyl ZDDPs should primarily undergo olefin elimination reactions to form precursors to ZDDP antiwear films.The details of the reaction pathways that these systems follow to form the precursors shed light on the observed byproducts of antiwear film formation.
机译:应用密度泛函理论计算研究了二烷基二硫代磷酸锌(ZDDP)机油抗磨添加剂可能参与的一组异构化和分解反应,这些反应的产物包括一组化学物质,这些化学物质可导致聚(硫代磷酸酯薄膜被认为是ZDDP提供的抗磨损保护的原因。所检查的具体反应涉及ZDDP中分子内烷基的转移或分子中烯烃的分子内消除。采用了一系列取代基来研究ZDDP分子上取代基的性质会影响这些反应的热力学和机理细节,从而反过来可能会对抗磨膜形成的各个方面产生影响。发现当氢原子为氢时,这些反应的定性和定量方面明显不同。用作取代基而不是烷基H取代体系的反应细节表明不应形成抗磨膜的前体。当使用烷基作为取代基时,本研究中考虑的反应的高能细节表现出对这些性质的依赖性。对这些细节的研究表明,直链伯烷基ZDDP应通过涉及烷基转移的反应分解,而仲和支链伯烷基ZDDP应首先进行烯烃消除反应以形成ZDDP耐磨膜的前体。这些系统形成前体所遵循的途径为观察到的抗磨膜形成副产物提供了亮光。

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