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Accelerating chemical reactions: Exploring reactive free-energy surfaces using accelerated ab initio molecular dynamics

机译:加速化学反应:利用加速的从头算分子动力学探索反应性自由能表面

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摘要

A biased potential molecular dynamics simulation approach, accelerated molecular dynamics (AMD), has been implemented in the framework of ab initio molecular dynamics for the study of chemical reactions. Using two examples, the double proton transfer reaction in formic acid dimer and the hypothetical adiabatic ring opening and subsequent rearrangement reactions in methylenecyclopropane, it is demonstrated that ab initio AMD can be readily employed to efficiently explore the reactive potential energy surface, allowing the prediction of chemical reactions and the identification of metastable states. An adaptive variant of the AMD method is developed, which additionally affords an accurate representation of both the free-energy surface and the mechanism associated with the chemical reaction of interest and can also provide an estimate of the reaction rate.
机译:在从头算分子动力学的框架中已实施了一种偏向性的潜在分子动力学模拟方法,即加速分子动力学(AMD),用于化学反应的研究。使用两个例子,在甲酸二聚体中的双质子转移反应和在亚甲基环丙烷中的假设绝热开环以及随后的重排反应,证明了从头算AMD可以很容易地用于有效地探索反应势能表面,从而可以预测化学反应和鉴定亚稳态。开发了AMD方法的自适应变体,该变体还提供了自由能表面和与目标化学反应有关的机理的准确表示,并且还可以提供反应速率的估计值。

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