Kean Zachary S, Niu Zhenbin, Hewage Gihan B, Rheingold Arnold L, Craig Stephen L
Department of Chemistry, Duke University , Durham, North Carolina 27708, United States.
J Am Chem Soc. 2013 Sep 11;135(36):13598-604. doi: 10.1021/ja4075997. Epub 2013 Aug 27.
A primary goal of covalent mechanochemistry is to develop polymer bound mechanophores that undergo constructive transformations in response to otherwise destructive forces. The [2 + 2] cycloreversion of cyclobutane mechanophores has emerged as a versatile framework to develop a wide range of stress-activated functionality. Herein, we report the development of a class of cyclobutane bearing bicyclo[4.2.0]octane mechanophores. Using carbodiimide polyesterification, these stress-responsive units were incorporated into high molecular weight polymers containing up to 700 mechanophores per polymer chain. Under exposure to the otherwise destructive elongational forces of pulsed ultrasound, these mechanophores unravel by ∼7 Å per monomer unit to form α,β-unsaturated esters that react constructively via thiol-ene conjugate addition to form sulfide functionalized copolymers and cross-linked polymer networks. To probe the dynamics of the mechanochemical ring opening, a series of bicyclo[4.2.0]octane derivatives that varied in stereochemistry, substitution, and symmetry were synthesized and activated. Reactivity and product stereochemistry was analyzed by (1)H NMR, which allowed us to interrogate the mechanism of the mechanochemical [2 + 2] cycloreversion. These results support that the ring opening is not concerted but proceeds via a 1,4 diradical intermediate. The bicyclo[4.2.0]octanes hold promise as active functional groups in new classes of stress-responsive polymeric materials.
共价机械化学的一个主要目标是开发聚合物结合的机械力发色团,使其在受到原本具有破坏性的力时发生建设性转变。环丁烷机械力发色团的[2 + 2]环化逆转已成为开发各种应力激活功能的通用框架。在此,我们报告了一类含环丁烷的双环[4.2.0]辛烷机械力发色团的开发。通过碳二亚胺聚酯化反应,这些应力响应单元被引入到高分子量聚合物中,每个聚合物链中最多含有700个机械力发色团。在脉冲超声的拉伸力作用下,这些机械力发色团每个单体单元展开约7 Å,形成α,β-不饱和酯,通过硫醇-烯共轭加成反应进行建设性反应,形成硫化物功能化共聚物和交联聚合物网络。为了探究机械化学开环的动力学,合成并激活了一系列立体化学、取代基和对称性不同的双环[4.2.0]辛烷衍生物。通过1H NMR分析反应活性和产物立体化学,这使我们能够研究机械化学[2 + 2]环化逆转的机制。这些结果支持开环不是协同进行的,而是通过1,4-双自由基中间体进行的。双环[4.2.0]辛烷有望成为新型应力响应聚合物材料中的活性官能团。