Eang Chorney, Nim Bunthoeun, Opaprakasit Mantana, Petchsuk Atitsa, Opaprakasit Pakorn
School of Integrated Science and Innovation, Sirindhorn International Institute of Technology (SIIT), Thammasat University Pathum Thani 12121 Thailand
Department of Materials Science, Faculty of Science, Chulalongkorn University Bangkok 10330 Thailand.
RSC Adv. 2022 Dec 9;12(54):35328-35340. doi: 10.1039/d2ra07132k. eCollection 2022 Dec 6.
A process for sizing down and functionalizing commercial polylactide (PLA) resin is developed by alcoholysis with 1,4-butanediol (BDO) and propylene glycol (PG) to medium-sized PLA-based diols, with lower cost than a bottom-up synthesis process. These are subsequently used as polyols in preparing polyurethanes (PU) by reacting with 1,6-diisocyanatohexane (HDI). The PLA-based PU has an excellent elongation at break of 487%. The products are suitable as toughening agents for brittle PLA resin due to their highly elastic properties and high compatibility with PLA. The PU products are blended with PLA resin at various compositions, and their physical and mechanical properties and shape recovery are examined. The tensile tests showed enhancements in elongation at break up to 160% with low modulus. The fracture morphology and FTIR results confirm that the blends show strong interfacial interaction and adhesion between the PLA-based PU disperse phase and the PLA matrix. The PLA/PU blends exhibit a high shape recovery efficiency, and their recovery mechanisms are identified. These flexible PLA/PU blends are promising for various applications where bio-compatibility/degradability and high ductility are required, especially as filaments for 3D bio-printing.
通过与1,4 - 丁二醇(BDO)和丙二醇(PG)进行醇解反应,将商业聚乳酸(PLA)树脂尺寸减小并功能化,制备出中等尺寸的基于PLA的二醇,其成本低于自下而上的合成工艺。随后,这些二醇通过与1,6 - 二异氰酸己酯(HDI)反应,用作制备聚氨酯(PU)的多元醇。基于PLA的PU具有487%的优异断裂伸长率。由于其高弹性性能和与PLA的高相容性,该产品适合作为脆性PLA树脂的增韧剂。将PU产品与PLA树脂以不同组成进行共混,并对其物理和机械性能以及形状恢复进行了研究。拉伸试验表明,在低模量下,断裂伸长率提高了160%。断裂形态和FTIR结果证实,共混物在基于PLA的PU分散相和PLA基体之间表现出强烈的界面相互作用和粘附力。PLA/PU共混物表现出高形状恢复效率,并确定了其恢复机制。这些柔性PLA/PU共混物在需要生物相容性/可降解性和高延展性的各种应用中具有前景,特别是作为3D生物打印的细丝。