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首页> 外文期刊>Journal of Applied Polymer Science >Biodegradability and improved mechanical performance of polyhydroxyalkanoates/agave fiber biocomposites compatibilized by different strategies
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Biodegradability and improved mechanical performance of polyhydroxyalkanoates/agave fiber biocomposites compatibilized by different strategies

机译:不同策略相容化的多羟基烷烃/龙舌兰纤维生物复合材料的生物降解性和改善的机械性能

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In this work, biocomposites made of polyhydroxyalkanoates (PHA) with natural fibers were produced via compression molding. In particular, polyhydroxybutyrate (PHB) and polyhydroxybutyrate-co-hydroxyvalerate (PHBV) were reinforced with 20 wt% of agave fibers. Different compatibilization strategies were investigated to improve the fiber-matrix interaction: fiber surface treatment in PHA solution, fiber surface treatment in maleated PHA solution, fiber propionylation, and extrusion with maleated PHA. The biocomposites were characterized in terms of morphology, mechanical properties, water absorption, and biodegradability by CO2 production tracking. In general, fiber propionylation was the best strategy for mechanical properties enhancement and water uptake decreasing. Biocomposites with propionylated fibers showed improved flexural strength (170% for PHB and 84% for PHBV). The flexural modulus was also enhanced with propionylated fibers up to 19% and 18% compared to uncompatibilized biocomposites (PHB and PHBV, respectively). Tensile strength increased by 16% (PHB) and 14% (PHBV), and the water absorption was reduced using propionylated fibers going from 6.6% to 4.4% compared with biocomposites with untreated fibers. Most importantly, the impact strength was also improved for all biocomposites by up to 96% compared with the neat PHA matrices. Finally, it was found that the compatibilization did not negatively modify the PHA biodegradability.
机译:在这项工作中,通过压缩成型制备了由聚羟基烷酸酯(PHA)和天然纤维制成的生物复合材料。特别是,聚羟基丁酸酯(PHB)和聚羟基丁酸酯-羟基戊酸共聚物(PHBV)用20 wt%的龙舌兰纤维增强。为了改善纤维与基体的相互作用,研究了不同的增容策略:PHA溶液中的纤维表面处理、马来酸PHA溶液中的纤维表面处理、纤维丙酰化和马来酸PHA挤出。通过CO2生成跟踪,对生物复合材料的形态、力学性能、吸水性和生物降解性进行了表征。总的来说,纤维丙酰化是提高力学性能和降低吸水率的最佳策略。含丙酰化纤维的生物复合材料的弯曲强度有所提高(PHB为170%,PHBV为84%)。与未相容的生物复合材料(PHB和PHBV)相比,丙酰化纤维的弯曲模量也提高了19%和18%。拉伸强度增加了16%(PHB)和14%(PHBV),与未处理纤维的生物复合材料相比,丙酰化纤维的吸水率从6.6%降低到4.4%。最重要的是,与纯PHA基质相比,所有生物复合材料的冲击强度也提高了96%。最后,发现增容并没有对PHA的生物降解性产生负面影响。

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