Pasini Chiara, Pandini Stefano, Milocco Francesca, Chen Jing, Tang Zhenchen, Pescarmona Paolo P, Sartore Luciana
Department of Mechanical and Industrial Engineering, University of Brescia, via Branze 38, 25133 Brescia, Italy.
Chemical Engineering Group, ENTEG, University of Groningen, Nijenborgh 3, 9747 AG Groningen, The Netherlands.
Int J Mol Sci. 2025 Apr 19;26(8):3878. doi: 10.3390/ijms26083878.
Carbon dioxide-based copolymers such as polypropylene carbonate (PPC) can offer the double environmental benefit of capturing CO and replacing oil-based raw materials in the plastics industry with renewable ones. However, their production at an industrial level is still limited by the range of applications in which their physicochemical properties are competitive and ideally surpass those of fossil-based polymeric commodities. This work introduces PPC materials with high-stretch and self-healing properties that were prepared by copolymerization of CO and propylene oxide using tailored Zn glutarate catalysts. The PPC materials were analyzed in terms of composition, molecular weight, thermal and mechanical behavior, particularly focusing on their tensile properties, strain recovery, creep response, and self-healing ability. All the prepared PPC materials showed good ductility and self-healing properties. The most promising ones achieved excellent and fast recovery of extremely high elongations (>700%), still reaching remarkable values (>600%) after proper self-healing. These high-stretch and self-healing PPC materials are completely amorphous, present good optical transparency, and can be processed using techniques normally used for other thermoplastics. Therefore, they are promising for a variety of applications, including shrink films and self-healing packaging, thus providing new, valuable perspectives for the industrialization of these CO-based polymers.
基于二氧化碳的共聚物,如聚碳酸亚丙酯(PPC),可以带来双重环境效益:捕获二氧化碳,并在塑料工业中用可再生原料替代石油基原料。然而,它们的工业化生产仍然受到其物理化学性质具有竞争力且理想情况下优于化石基聚合物商品的应用范围的限制。这项工作介绍了具有高拉伸和自愈合性能的PPC材料,这些材料是通过使用定制的戊二酸锌催化剂使二氧化碳和环氧丙烷共聚制备的。对PPC材料进行了组成、分子量、热行为和力学行为分析,特别关注其拉伸性能、应变恢复、蠕变响应和自愈合能力。所有制备的PPC材料都表现出良好的延展性和自愈合性能。最有前景的材料在极高伸长率(>700%)下实现了优异且快速的恢复,经过适当的自愈合后仍能达到显著值(>600%)。这些高拉伸和自愈合的PPC材料完全无定形,具有良好的光学透明度,并且可以使用通常用于其他热塑性塑料的技术进行加工。因此,它们在包括收缩膜和自愈合包装在内的各种应用中具有前景,从而为这些基于二氧化碳的聚合物的工业化提供了新的、有价值的前景。