College of Light Industry Science and Engineering, Beijing Technology and Business University, Beijing 100048, China; China Key Laboratory of Polymer Foam Materials Processing and Application for light Industry, China.
College of Light Industry Science and Engineering, Beijing Technology and Business University, Beijing 100048, China; Key Laboratory of Advanced Materials of Ministry of Education, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.
Int J Biol Macromol. 2024 Nov;281(Pt 3):136440. doi: 10.1016/j.ijbiomac.2024.136440. Epub 2024 Oct 31.
The development and use of bio-based materials instead of traditional petroleum-based materials is an effective way to conserve fossil resources and reduce carbon emissions. Polylactic acid (PLA) has considerable potential as a bio-based material for industrial purposes. However, its limited toughness restricts its widespread application. In this study, a hyperbranched polyester with microcrystalline cellulose as the core (MCC-EHBP) was designed, synthesized, and used to upgrade the compatibility of a PLA/bio-based polyamide 11 (PA11) blend by synchronously enhancing the toughness and strength of PLA. Owing to the excellent reactivity of the epoxy group, MCC-EHBP forms a block-like dendritic polymer structure with the molecular chain of PLA/PA11, which observably improves the compatibility of the two phases of the blend. The prepared PLA/PA11/MCC-EHBP blend has tensile strength of 67.37 MPa, impact strength of 38.75 kJ m, and an elongation at break of 30.3 %, which are 36.9 %, 241.7 %, and 300.1 % higher than those of PLA, respectively. Moreover, the initial decomposition temperature and activation energy of PLA are increased by 5 °C and 17.3 %, respectively. The proposed simple, efficient, and environmentally friendly method for preparing PLA with ultra-high toughness, strength, and heat resistance is expected to broaden the industrial applications of this polyacid.
生物基材料的开发和应用替代传统的石油基材料是节约化石资源和减少碳排放的有效途径。聚乳酸(PLA)作为一种具有工业应用潜力的生物基材料,具有相当大的潜力。然而,其有限的韧性限制了其广泛应用。本研究设计、合成了以微晶纤维素为核的超支化聚酯(MCC-EHBP),通过同步提高 PLA 的韧性和强度来改善 PLA/生物基聚酰胺 11(PA11)共混物的相容性。由于环氧基团的优异反应性,MCC-EHBP 与 PLA/PA11 的分子链形成块状树枝状聚合物结构,明显改善了共混物两相的相容性。制备的 PLA/PA11/MCC-EHBP 共混物的拉伸强度为 67.37 MPa,冲击强度为 38.75 kJ/m,断裂伸长率为 30.3%,分别比 PLA 提高了 36.9%、241.7%和 300.1%。此外,PLA 的起始分解温度和活化能分别提高了 5°C 和 17.3%。该方法简单、高效、环保,为制备具有超高韧性、强度和耐热性的 PLA 提供了一种新方法,有望拓宽该聚酸的工业应用。