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首页> 外文期刊>Journal of Applied Polymer Science >New multifunctional poly(lactide acid) composites: Mechanical, antibacterial, and degradation properties
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New multifunctional poly(lactide acid) composites: Mechanical, antibacterial, and degradation properties

机译:新型多功能聚丙交酯酸复合材料:机械,抗菌和降解性能

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The aim of this work was to study the effect of the innovative combination of microcrystalline cellulose (MCC) and silver nanoparticles (Ag) on the poly (lactide acid) (PLA) composite properties, to modulate the PLA mechanical response and induce an antibacterial effect. The preparation and characterization of PLA-based composites with MCC and Ag nanoparticles by twin-screw extrusion followed by injection molding is reported. A film procedure was also performed to obtain PLA and PLA composite films with a thickness ranged between 20 and 60 ?. The analysis of disintegrability in composting conditions by means of visual, morphological, thermal, and chemical investigations was done to gain insights into the post-use degradation processes. Tensile test demonstrated the MCC reinforcing effect, while a bactericidal activity of silver-based composites against a Gram-negative bacteria (Escherichia coli) and a Gram-positive bacteria (Staphylococcus aureus) was detected at any time points and temperatures analyzed. Moreover, the disintegrability in composting showed that MCC is able to promote the degradation process. The combination of MCC and Ag nanoparticles in PLA polymer matrix offers promising perspectives to realize multifunctional ternary composites with good mechanical response and antibacterial effect, maintaining the optical transparency and the disintegrability, hence suitable for packaging applications.
机译:这项工作的目的是研究微晶纤维素(MCC)和银纳米颗粒(Ag)的创新组合对聚(乳酸)(PLA)复合材料性能的影响,以调节PLA机械响应并诱导抗菌作用。报道了通过双螺杆挤出然后注射成型制备具有MCC和Ag纳米粒子的PLA基复合材料和表征。还进行了膜加工,以获得厚度在20至60?之间的PLA和PLA复合膜。通过视觉,形态,热学和化学研究对堆肥条件下的崩解性进行了分析,以深入了解使用后的降解过程。拉伸试验证明了MCC的增强作用,而在所分析的任何时间点和温度下,都检测到了银基复合物对革兰氏阴性菌(大肠杆菌)和革兰氏阳性菌(金黄色葡萄球菌)的杀菌活性。此外,堆肥的可分解性表明MCC能够促进降解过程。 MCC和Ag纳米粒子在PLA聚合物基质中的结合为实现具有良好机械响应和抗菌作用,保持光学透明性和可崩解性的多功能三元复合材料提供了广阔的前景,因此适用于包装应用。

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