Division of Advanced Science and Engineering, Graduate School of Engineering , Chiba University , 1-33 Yayoi-cho, Inage-ku , Chiba 263-8522 , Japan.
Institute for Global Prominent Research (IGPR) , Chiba University , 1-33, Yayoi-cho, Inage-ku , Chiba 263-8522 , Japan.
J Am Chem Soc. 2019 Aug 21;141(33):13196-13202. doi: 10.1021/jacs.9b06029. Epub 2019 Aug 7.
Kinetically formed metastable molecular assemblies have attracted increasing interest especially in the field of supramolecular polymers. In most cases, metastable assemblies are ensemblies of aggregates based on the same supramolecular motif but with different lengths or sizes, and therefore their kinetic stabilities are experimentally indistinguishable. Herein, we demonstrate a topological effect on kinetic stabilities in a complex mixture of metastable supramolecular polymers. Our azobenzene-incorporated monomer upon heating in nonpolar solvent at ambient temperature kinetically forms complex mixtures of supramolecular polymers with cyclized and open-ended randomly coiled topologies. Upon further heating, we obtained thermodynamically stable twisted fibrils organizing into crystalline fibers. Through the direct visualization of the complex supramolecular polymer mixtures by atomic force microscopy, we demonstrate that the cyclized supramolecular polymer has superior kinetic stability compared to the open-ended species toward the thermal transformation into twisted fibrils. Since the superior kinetic stability of the cyclized species can be attributed to the absence of aggregate termini, we could convert them fully into the thermodynamic species through photoinduced opening of the cyclized structures.
动力学形成的亚稳分子组装体引起了越来越多的关注,特别是在超分子聚合物领域。在大多数情况下,亚稳组装体是基于相同超分子结构但具有不同长度或大小的聚集物的集合,因此它们的动力学稳定性在实验上是无法区分的。在这里,我们在复杂的亚稳超分子聚合物混合物中证明了拓扑效应对动力学稳定性的影响。我们的含偶氮苯单体在环境温度下的非极性溶剂中加热时,动力学上形成了具有环状和无末端随机卷曲拓扑结构的超分子聚合物的复杂混合物。进一步加热后,我们获得了热力学稳定的扭曲纤维,这些纤维组织成结晶纤维。通过原子力显微镜对复杂的超分子聚合物混合物进行直接可视化,我们证明与热转化为扭曲纤维相比,环状超分子聚合物具有比无末端物种更优越的动力学稳定性。由于环状物种的优越动力学稳定性可归因于没有聚集物末端,我们可以通过光诱导打开环状结构将它们完全转化为热力学物种。