Rylski Adrian K, Cater Henry L, Mason Keldy S, Allen Marshall J, Arrowood Anthony J, Freeman Benny D, Sanoja Gabriel E, Page Zachariah A
Department of Chemistry, The University of Texas at Austin, Austin, TX 78712, USA.
McKetta Department of Chemical Engineering, The University of Texas at Austin, Austin, TX 78712, USA.
Science. 2022 Oct 14;378(6616):211-215. doi: 10.1126/science.add6975. Epub 2022 Oct 13.
An organized combination of stiff and elastic domains within a single material can synergistically tailor bulk mechanical properties. However, synthetic methods to achieve such sophisticated architectures remain elusive. We report a rapid, facile, and environmentally benign method to pattern strong and stiff semicrystalline phases within soft and elastic matrices using stereo-controlled ring-opening metathesis polymerization of an industrial monomer, -cyclooctene. Dual polymerization catalysis dictates polyolefin backbone chemistry, which enables patterning of compositionally uniform materials with seamless stiff and elastic interfaces. Visible light-induced activation of a metathesis catalyst results in the formation of semicrystalline polyoctenamer rubber, outcompeting the formation of polyoctenamer rubber, which occurs at room temperature. This bottom-up approach provides a method for manufacturing polymeric materials with promising applications in soft optoelectronics and robotics.
单一材料中刚性和弹性区域的有序组合可以协同调整整体机械性能。然而,实现这种复杂结构的合成方法仍然难以捉摸。我们报道了一种快速、简便且环境友好的方法,通过工业单体 - 环辛烯的立体控制开环易位聚合,在柔软的弹性基质中形成坚固且刚性的半结晶相图案。双重聚合催化决定了聚烯烃主链化学性质,这使得能够制备具有无缝刚性和弹性界面的成分均匀的材料。可见光诱导的易位催化剂活化导致半结晶聚辛烯橡胶的形成,胜过在室温下发生的聚辛烯橡胶的形成。这种自下而上的方法为制造在软光电子学和机器人技术中有广阔应用前景的聚合物材料提供了一种方法。