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扭转对芴基萘并吡喃机械发色团力耦合反应活性的作用

The Role of Torsion on the Force-Coupled Reactivity of a Fluorenyl Naphthopyran Mechanophore.

作者信息

Osler Skylar K, Ballinger Nathan A, Robb Maxwell J

机构信息

Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California 91125, United States.

出版信息

J Am Chem Soc. 2025 Jan 29;147(4):3904-3911. doi: 10.1021/jacs.4c18395. Epub 2025 Jan 15.

Abstract

The unique reactivity of molecules under force commands an understanding of structure-mechanochemical activity relationships. While conceptual frameworks for understanding force transduction in many systems are established, systematic investigations into force-coupled molecular torsions are limited. Here, we describe a novel fluorenyl naphthopyran mechanophore for which mechanical force is uniquely coupled to the torsional motions associated with the overall chemical transformation as a result of the conformational rigidity imposed by the fluorene group. Using a combined experimental and theoretical approach, we demonstrate that variation in the pulling geometry on the fluorene subunit results in significant differences in mechanochemical activity due to pronounced changes in how force is coupled to distinct torsional motions and their coherence with the nuclear motions that accompany the force-free ring-opening reaction. Notably, subtle changes in polymer attachment position lead to a >50% difference in the rate of mechanochemical activation in ultrasonication experiments. Our results offer new insights into the structural and geometric factors that influence mechanochemical reactivity by describing how mechanical force is coupled to a reaction that principally involves torsional motions.

摘要

分子在力作用下的独特反应性要求我们理解结构-机械化学活性之间的关系。虽然在许多系统中已经建立了理解力传导的概念框架,但对力耦合分子扭转的系统研究却很有限。在这里,我们描述了一种新型芴基萘并吡喃机械基团,由于芴基所施加的构象刚性,机械力独特地与与整体化学转化相关的扭转运动耦合。通过结合实验和理论方法,我们证明芴亚基上拉伸几何结构的变化会导致机械化学活性的显著差异,这是因为力与不同扭转运动的耦合方式以及它们与无外力开环反应伴随的核运动的相干性发生了明显变化。值得注意的是,在超声实验中,聚合物连接位置的细微变化会导致机械化学活化速率相差超过50%。我们的结果通过描述机械力如何与主要涉及扭转运动的反应耦合,为影响机械化学反应性的结构和几何因素提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f984/11783525/6cd035b4c53a/ja4c18395_0006.jpg

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