SAMS Research Group, Institut Charles Sadron, University of Strasbourg, CNRS , 23 rue du Loess, BP 84047, 67034 Strasbourg Cedex 2, France.
Matière et Systèmes Complexes (MSC) Laboratory, UMR CNRS 7057, Sorbonne Paris Cité, University of Paris Diderot-Paris VII , Bâtiment Condorcet, 75205 Paris Cedex 13, France.
J Am Chem Soc. 2017 Oct 25;139(42):14825-14828. doi: 10.1021/jacs.7b06710. Epub 2017 Oct 16.
The implementation of molecular machines in polymer science is of high interest to transfer mechanical motions from nanoscale to macroscale in order to access new kinds of active devices and materials. Toward this objective, thermodynamic and topological aspects need to be explored for reaching efficient systems capable of producing a useful work. In this paper we describe the branched polymerization of pH-sensitive bistable [c2] daisy chain rotaxanes by using copper(I)-catalyzed Huisgen 1,3-dipolar cycloaddition ("click chemistry"). With this cross-linked topology, the corresponding materials in the form of chemical gels can be contracted and expanded over a large variation of volume (∼50%) by changing the protonation state of the system. HR-MAS H NMR and neutron scattering experiments reveal that this macroscopic response of the gels results from the synchronized actuation of the mechanical bonds at the molecular level.
在聚合物科学中实现分子机器对于将机械运动从纳米尺度传递到宏观尺度以获得新型的活性器件和材料非常重要。为了实现这一目标,需要探索热力学和拓扑学方面的内容,以构建能够产生有用功的高效系统。在本文中,我们描述了通过铜(I)催化的 Huisgen 1,3-偶极环加成(“点击化学”)来实现 pH 敏感双稳态[c2]雏菊链轮烷的支化聚合。通过这种交联拓扑结构,通过改变系统的质子化状态,可以使相应的化学凝胶材料在较大的体积变化范围内(约 50%)收缩和膨胀。高分辨率魔角旋转核磁共振(HR-MAS H NMR)和中子散射实验表明,凝胶的这种宏观响应是分子水平上机械键同步致动的结果。