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基于聚乳酸的接枝共聚物:用于生物医学和环境友好应用的合成策略和性能改善综述。

Poly(Lactic Acid)-Based Graft Copolymers: Syntheses Strategies and Improvement of Properties for Biomedical and Environmentally Friendly Applications: A Review.

机构信息

Department of Polymers for Health and Biomaterials, Institut des Biomolecules Max Mousseron, UMR 5247, University of Montpellier, CNRS, ENSCM, 34000 Montpellier, France.

Polymers Composites and Hybrids, IMT Mines d'Alès, 30100 Alès, France.

出版信息

Molecules. 2022 Jun 28;27(13):4135. doi: 10.3390/molecules27134135.

Abstract

As a potential replacement for petroleum-based plastics, biodegradable bio-based polymers such as poly(lactic acid) (PLA) have received much attention in recent years. PLA is a biodegradable polymer with major applications in packaging and medicine. Unfortunately, PLA is less flexible and has less impact resistance than petroleum-based plastics. To improve the mechanical properties of PLA, PLA-based blends are very often used, but the outcome does not meet expectations because of the non-compatibility of the polymer blends. From a chemical point of view, the use of graft copolymers as a compatibilizer with a PLA backbone bearing side chains is an interesting option for improving the compatibility of these blends, which remains challenging. This review article reports on the various graft copolymers based on a PLA backbone and their syntheses following two chemical strategies: the synthesis and polymerization of modified lactide or direct chemical post-polymerization modification of PLA. The main applications of these PLA graft copolymers in the environmental and biomedical fields are presented.

摘要

作为石油基塑料的潜在替代品,可生物降解的生物基聚合物,如聚乳酸(PLA),近年来受到了广泛关注。PLA 是一种可生物降解的聚合物,主要应用于包装和医学领域。然而,与石油基塑料相比,PLA 的柔韧性和抗冲击性较差。为了提高 PLA 的机械性能,通常使用 PLA 基共混物,但由于聚合物共混物的不兼容性,结果并不理想。从化学角度来看,使用接枝共聚物作为 PLA 主链带有侧链的增容剂是改善这些共混物相容性的一种有趣选择,但仍然具有挑战性。本文综述了基于 PLA 主链的各种接枝共聚物及其两种化学策略的合成方法:改性丙交酯的合成和聚合或 PLA 的直接化学后聚合修饰。介绍了这些 PLA 接枝共聚物在环境和生物医学领域的主要应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ae0/9268542/667ffab42732/molecules-27-04135-g011.jpg

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