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通过密度泛函理论计算和微观动力学建模理解球磨机械化学过程。

Understanding Ball Milling Mechanochemical Processes with DFT Calculations and Microkinetic Modeling.

作者信息

Pladevall Bruna S, de Aguirre Adiran, Maseras Feliu

机构信息

Institute of Chemical Research of Catalonia, The Barcelona Institute for Science and Technology, Avgda. Països Catalans, 16, Tarragona, 43007, Catalonia, Spain.

出版信息

ChemSusChem. 2021 Jul 6;14(13):2763-2768. doi: 10.1002/cssc.202100497. Epub 2021 Jun 9.

Abstract

Mechanochemistry is an emerging field with many potential applications in sustainable chemistry. But despite the growing interest in the field, its underlying mechanistic foundations are not fully understood yet. This work presents the application of computational tools, such as DFT calculations in continuum and microkinetic modeling, to the analysis of mechanically activated procedures. Two reactions reported in previous experimental publications were studied: (i) a series of Diels-Alder reactions and (ii) the synthesis of sulfonylguanidines. Calculations succeed in reproducing experimentally reported reaction times. The procedures were mostly standard, coupled with some sensitive choices in terms of starting concentrations and dielectric constant. This means that these particular reactions accelerated by ball milling followed the same mechanism as the equivalent reactions in solution. The implications of this result on the general picture of mechanochemical processes are discussed.

摘要

机械化学是一个新兴领域,在可持续化学中有许多潜在应用。尽管该领域的关注度不断提高,但其潜在的机理基础尚未完全被理解。这项工作展示了计算工具的应用,如连续介质中的密度泛函理论(DFT)计算和微观动力学建模,用于分析机械活化过程。研究了先前实验出版物中报道的两个反应:(i)一系列狄尔斯-阿尔德反应和(ii)磺酰胍的合成。计算成功再现了实验报道的反应时间。这些过程大多是标准的,在起始浓度和介电常数方面有一些敏感的选择。这意味着通过球磨加速的这些特定反应与溶液中的等效反应遵循相同的机理。讨论了这一结果对机械化学过程总体情况的影响。

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