极限氧指数
复合数
材料科学
极限抗拉强度
可燃性
乳酸
降级(电信)
紫外线
紫外线
聚乳酸
化学工程
复合材料
聚合物
热解
细菌
工程类
生物
电信
遗传学
烧焦
光电子学
计算机科学
作者
Yuchun Li,Shuang Qiu,Jun Sun,Yajing Ren,Shuheng Wang,Xingguo Wang,Wenjia Wang,Hongfei Li,Bin Fei,Xiaoyu Gu,Sheng Zhang
标识
DOI:10.1016/j.cej.2021.131979
摘要
Despite the advantages of biological compatibility and high transparency, there are still some drawbacks for Poly(lactic acid) (PLA) such as highly flammability and poor ultraviolet resistance. Herein, a fully bio-based additive ([email protected]) with a core–shell structure is synthesized by chitosan microspheres and phytic acids. The introduction of [email protected] simultaneously improves the mechanical properties, flame retardancy, and UV-blocking performance of PLA, accompanied by an accelerated degradation capacity in soil. By the presence of 9 wt% [email protected] in the PLA composite sample, the limiting oxygen index value is increased from 18.2% to 29.6%, and the UL-94 test grade is improved to V-0. The tensile strength is well maintained and Young's modulus is sharply increased for PLA/[email protected] composites. Moreover, the photoaging process of PLA can be significantly delayed due to the excellent free radical quenching capacity of [email protected] Only less than 10% UV light can be penetrated for the PLA/9%[email protected] sample, and the ultraviolet protection factor is increased from 0.77 of control PLA to 30.07. More importantly, the addition of [email protected] can accelerate the degradation of PLA, which is of significance for biodegradable materials. This work firstly provides a green strategy to fabricate fully bio-based polymer composites with high performance, long service life, and rapid degradation in soil.
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