Madbouly Samy A, Kessler Michael R
School of Engineering, Penn State Behrend, Erie, Pennsylvania16563, United States.
Department of Chemistry, Faculty of Science, Cairo University, Orman, Giza 12613, Egypt.
ACS Omega. 2020 Apr 16;5(17):9977-9984. doi: 10.1021/acsomega.0c00297. eCollection 2020 May 5.
Nanoscale semi-interpenetrating polymer networks of bio-based poly(ε-caprolactone) (PCL) and polymerized tung oil have been prepared via in situ cationic polymerization and compatibilization in a homogeneous solution. This novel blending technique produced a nanoscale morphology of poly(ε-caprolactone) with average particle sizes as small as 100 nm dispersed in a cross-linked tung oil matrix for 20 and 30 wt % PCL blend compositions. In addition, the exothermic cationic polymerization of tung oil in the presence of the PCL homogeneous solution created a microporous morphology with open three-dimensional interconnected cluster structures. The porous morphology was found to be composition-dependent (the pore size and interconnectivity decreased with increasing PCL content in the blend). The values of the cross-link density and storage modulus in the glassy state for fully cured samples increased significantly and reached a maximum for the 20 wt % PCL blend. This simple, versatile, low-cost strategy for preparing nanoscale and interconnected three-dimensional cluster structures with a microporous morphology and desired properties should be widely applicable for new polymer systems.
通过在均相溶液中原位阳离子聚合和增容作用,制备了基于生物基聚(ε-己内酯)(PCL)和聚合桐油的纳米级半互穿聚合物网络。这种新型共混技术产生了聚(ε-己内酯)的纳米级形态,对于20 wt%和30 wt%的PCL共混物组成,平均粒径小至100 nm,分散在交联桐油基质中。此外,在PCL均相溶液存在下桐油的放热阳离子聚合产生了具有开放三维互连簇结构的微孔形态。发现多孔形态取决于组成(孔径和互连性随共混物中PCL含量的增加而降低)。完全固化样品在玻璃态下的交联密度和储能模量值显著增加,并在20 wt%的PCL共混物中达到最大值。这种制备具有微孔形态和所需性能的纳米级和互连三维簇结构的简单、通用、低成本策略应广泛适用于新型聚合物体系。