Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, PR China; School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei 230026, PR China.
Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, PR China.
Int J Biol Macromol. 2024 Nov;280(Pt 4):136161. doi: 10.1016/j.ijbiomac.2024.136161. Epub 2024 Sep 30.
The lower melt strength of poly(lactide) (PLA) limits its broader applications. Here, a strategy combining copolymerization with multi-arm branching was propose to enhance the melt strength of PLA. Initially, stereoisomeric cyclic ester monomers (CEM) synthesized via zeolite catalysis were copolymerized into PLA chains. Subsequently, rheological testing revealed that the zero-shear viscosity (η) of linear PLA increased by 467 % with only 1 mol% of CEM units. Our study further systematically explored the relationship between the side group structure and chirality of the comonomers and the rheological properties of the copolymers. CEMs with long-chain branched structures and opposite chirality had the best enhancement effect. In order to further enhance the melt strength, we successfully achieved alterations in polymer topology by employing trimethylolpropane as an initiator, corresponding three-arm copolymers achieve up to a 67-fold increase in η (1.0 kPa∙s to 68.1 kPa∙s). Tensile tests indicated that the mechanical properties of the copolymers were comparable to those of PLA, with a tensile strength of approximately 65 MPa. Additionally, due to the high melt strength, we successfully produced closed-cell PLA-based foam materials with uniform pore sizes. In summary, this study furnishes a feasible method for designing polymer materials possessing the desired melt strength.
聚乳酸(PLA)的低熔体强度限制了其更广泛的应用。在这里,我们提出了一种将共聚与多臂支化相结合的策略来提高 PLA 的熔体强度。首先,通过沸石催化合成的立体异构环状酯单体(CEM)被共聚到 PLA 链中。随后,流变学测试表明,线性 PLA 的零切黏度(η)仅用 1mol%的 CEM 单元就增加了 467%。我们的研究还系统地探讨了共聚单体的侧基结构和手性与共聚物流变性能之间的关系。具有长支链结构和相反手性的 CEM 具有最佳的增强效果。为了进一步提高熔体强度,我们成功地采用三羟甲基丙烷作为引发剂,改变了聚合物的拓扑结构,相应的三臂共聚物的 η 增加了 67 倍(从 1.0kPa·s 增加到 68.1kPa·s)。拉伸测试表明,共聚物的力学性能与 PLA 相当,拉伸强度约为 65MPa。此外,由于熔体强度高,我们成功地制备了具有均匀孔径的闭孔 PLA 基泡沫材料。总之,本研究为设计具有所需熔体强度的聚合物材料提供了一种可行的方法。