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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Disfavoring Mechanochemical Reactions by Stress-Induced Steric Hindrance
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Disfavoring Mechanochemical Reactions by Stress-Induced Steric Hindrance

机译:应力诱导的立体阻碍阻碍机械化学反应

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摘要

Mechanochemical activation of covalent bonds using sonication, force spectroscopy, or molecular force probes usually lowers activation energies and thus accelerates reactions. However, applying mechanical forces to complex molecules is known to not only stretch covalent bonds but also to distort the molecular skeleton that hosts the activated bonds-leading to nonmonotonous behavior as a function of force. Here, the Bell-Taft model is introduced and validated which both rationalizes and quantifies such nonlinear effects on activation energies, including the transition from catch bonds at low forces to slip binding, in terms of steric hindrance caused by force-induced conformational distortions. The fully parametrized version of the model relies exclusively on readily accessible zero-force data and thus allows one to qualitatively explore mechanically induced reactivity changes in complex setups.
机译:使用超声,力谱或分子力探针对共价键进行机械化学活化通常会降低活化能,从而加速反应。但是,已知对复杂分子施加机械力不仅会拉伸共价键,还会扭曲承载活化键的分子骨架,从而导致非单调行为作为力的函数。在此,引入并验证了Bell-Taft模型,该模型合理化和量化了这种对活化能的非线性影响,包括由力引起的构象畸变引起的空间位阻,包括从低力的捕获键到滑移结合的过渡。该模型的完全参数化版本仅依赖于易于访问的零力数据,因此可以定性地探索复杂设置中机械诱导的反应性变化。

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