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Recent advances in high performance poly(lactide): from green plasticization to super-tough materials via (reactive) compounding

机译:高性能聚丙交酯的最新进展:从绿色增塑到通过(反应性)复合的超韧材料

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摘要

Due to its origin from renewable resources, its biodegradability, and recently, its industrial implementation at low costs, poly(lactide) (PLA) is considered as one of the most promising ecological, bio-sourced and biodegradable plastic materials to potentially and increasingly replace traditional petroleum derived polymers in many commodity and engineering applications. Beside its relatively high rigidity [high tensile strength and modulus compared with many common thermoplastics such as poly(ethylene terephthalate) (PET), high impact poly(styrene) (HIPS) and poly(propylene) (PP)], PLA suffers from an inherent brittleness, which can limit its applications especially where mechanical toughness such as plastic deformation at high impact rates or elongation is required. Therefore, the curve plotting stiffness vs. impact resistance and ductility must be shifted to higher values for PLA-based materials, while being preferably fully bio-based and biodegradable upon the application. This review aims to establish a state of the art focused on the recent progresses and preferably economically viable strategies developed in the literature for significantly improve the mechanical performances of PLA. A particular attention is given to plasticization as well as to impact resistance modification of PLA in the case of (reactive) blending PLA-based systems.
机译:由于其源自可再生资源,具有生物可降解性,并且最近以低成本实施工业化,因此聚丙交酯(PLA)被认为是最有前途的生态,生物来源和可生物降解的塑料材料之一,有可能被越来越多地取代传统石油衍生的聚合物在许多商品和工程应用中的应用。除了具有相对较高的刚性[与许多常见的热塑性塑料(例如,聚对苯二甲酸乙二酯(PET),高抗冲聚苯乙烯(HIPS)和聚丙稀(PP))相比,抗拉强度和模量高],PLA还具有固有的脆性,这可能会限制其应用,特别是在要求机械韧性(例如在高冲击速率或伸长率下发生塑性变形)的情况下。因此,对于基于PLA的材料,绘制刚度对抗冲击性和延展性的曲线必须移到更高的值,同时优选地是完全基于生物的并且在应用时可生物降解。这篇综述旨在建立一个以最新进展为重点的技术水平,最好是文献中开发的经济上可行的策略,以显着改善PLA的机械性能。在(反应性)共混基于PLA的体系的情况下,应特别注意PLA的增塑以及抗冲击性的改进。

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