Jodra Alejandro, García-Iriepa Cristina, Frutos Luis Manuel
Departamento de Química Analítica, Química Física e Ingeniería Química, y Grupo de Reactividad y Estructura Molecular (RESMOL), Universidad de Alcalá, Alcalá de Henares, 28806 Madrid, Spain.
Instituto de Investigación Química ''Andrés M. del Río'' (IQAR), Universidad de Alcalá, Alcalá de Henares, 28806 Madrid, Spain.
J Chem Theory Comput. 2023 Sep 26;19(18):6392-6401. doi: 10.1021/acs.jctc.3c00490. Epub 2023 Sep 5.
The use of mechanical forces at the molecular level has been shown to be an interesting tool for modulating different chemical and physical molecular properties. The so-called covalent mechanochemistry deals with the application of precise mechanical forces that induce specific changes in the structure, stability, reactivity, and other physical properties. The use of this kind of force to modulate photophysical properties and photochemical reactivity has also been studied. Nevertheless, the general problem of mechanical modulation of the energy gap between two electronic states has been addressed only with the development of simple theoretical models. Here, we develop and implement an algorithm providing the (LGMF) that allows the determination of the optimal mechanical forces tuning the electronic energy gap, as well as to identify the maximum mechanical response of a molecular system to the application of any mechanical stimulus. The algorithm has been implemented for diverse molecular systems showing different degrees of flexibility. The phyton code of the algorithm is available in a public repository.
在分子水平上使用机械力已被证明是一种用于调节不同化学和物理分子性质的有趣工具。所谓的共价机械化学涉及精确机械力的应用,这些力会引起结构、稳定性、反应性和其他物理性质的特定变化。利用这种力来调节光物理性质和光化学反应性也已得到研究。然而,只有通过简单理论模型的发展,才解决了两个电子态之间能隙的机械调制这一普遍问题。在这里,我们开发并实现了一种算法,提供线性几何机械力(LGMF),该算法允许确定调节电子能隙的最佳机械力,以及识别分子系统对任何机械刺激应用的最大机械响应。该算法已针对显示不同程度灵活性的多种分子系统实施。该算法的Python代码可在公共存储库中获取。