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Differences in the Abilities to Mechanically Eliminate Activation Energies for Unimolecular and Bimolecular Reactions

机译:机械消除单分子和双分子反应的活化能的能力差异

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摘要

Mechanochemistry, i.e. the application of forces, F, at the molecular level, has attracted significant interest as a means of controlling chemical reactions. The present study uses quantum chemical calculations to explore the abilities to mechanically eliminate activation energies, ΔE, for unimolecular and bimolecular reactions. The results demonstrate that ΔE can be eliminated for unimolecular reactions by applying sufficiently large F along directions that move the reactant and/or transition state (TS) structures parallel to the zero-F reaction coordinate, S0. In contrast, eliminating ΔE for bimolecular reactions requires the reactant to undergo a force-induced shift parallel to S0 irrespective of changes in the TS. Meeting this requirement depends upon the coupling between F and S0 in the reactant. The insights regarding the differences in eliminating ΔE for unimolecular and bimolecular reactions, and the requirements for eliminating ΔE, may be useful in practical efforts to control reactions mechanochemically.
机译:机械化学,即在分子水平上施加力F作为控制化学反应的一种手段引起了极大的兴趣。本研究使用量子化学计算来探索机械消除单分子和双分子反应的活化能ΔE的能力。结果表明,通过沿使反应物和/或过渡态(TS)结构平行于零-F反应坐标S0移动的方向施加足够大的F,可以消除单分子反应的ΔE。相反,要消除双分子反应的ΔE,则无论TS的变化如何,反应物都会经历与S0平行的力致位移。满足此要求取决于反应物中F和SO之间的耦合。关于消除单分子和双分子反应的ΔE的差异以及消除ΔE的要求的见解,在机械控制化学反应的实践中可能有用。

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