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通过远距离力承载区域异构连接进行的力传导影响环丁烷的机械化学反应活性。

Force Transduction Through Distant Force-Bearing Regioisomeric Linkages Affects the Mechanochemical Reactivity of Cyclobutane.

作者信息

Flear Erica J, Horst Maggie, Yang Jinghui, Xia Yan

机构信息

Department of Chemistry, Stanford University Stanford, California, 94305, United States.

出版信息

Angew Chem Int Ed Engl. 2024 Aug 12;63(33):e202406103. doi: 10.1002/anie.202406103. Epub 2024 Jul 11.

Abstract

Fundamental understanding of mechanochemical reactivity is important for designing new mechanophores. Besides the core structure of mechanophores, substituents on a mechanophore can affect its mechanochemical reactivity through electronic stabilization of the intermediate or effectiveness of force transduction from the polymer backbone to the mechanophore. The latter factor represents a unique mechanical effect in considering polymer mechanochemistry. Here, we show that regioisomeric linkage that is not directly adjacent to the first cleaving bond in cyclobutane can still significantly affect the mechanochemical reactivity of the mechanophore. We synthesized three non-scissile 1,2-diphenyl cyclobutanes, varying their linkage to the polymer backbone via the o, m, or p-position of the diphenyl substituents. Even though the regioisomers share the same substituted cyclobutane core structure and similar electronic stabilization of the diradical intermediate from cleaving the first C-C bond, the p isomer exhibited significantly higher mechanochemical reactivity than the o and m isomers. The observed difference in reactivity can be rationalized as the much more effective force transduction to the scissile bond through the p-position than the other two substitution positions. These findings point to the importance of considering force-bearing linkages that are more distant from the bond to be cleaved when incorporating mechanophores into polymer backbones.

摘要

对机械化学反应性的基本理解对于设计新型机械活性基团很重要。除了机械活性基团的核心结构外,机械活性基团上的取代基可通过中间体的电子稳定作用或从聚合物主链到机械活性基团的力传递效率来影响其机械化学反应性。后一个因素在考虑聚合物机械化学时代表了一种独特的力学效应。在此,我们表明,在环丁烷中不直接与第一个断裂键相邻的区域异构连接仍然可以显著影响机械活性基团的机械化学反应性。我们合成了三种不可裂解的1,2 - 二苯基环丁烷,通过二苯基取代基的邻位、间位或对位改变它们与聚合物主链的连接方式。尽管这些区域异构体具有相同的取代环丁烷核心结构以及从断裂第一个C - C键产生的双自由基中间体的类似电子稳定作用,但对位异构体表现出比邻位和间位异构体显著更高的机械化学反应性。观察到的反应性差异可以解释为通过对位比其他两个取代位置向可裂解键传递力更有效。这些发现表明,在将机械活性基团纳入聚合物主链时,考虑离要断裂的键更远的受力连接的重要性。

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