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Toughening of Poly(lactic acid) and Thermoplastic Cassava Starch Reactive Blends Using Graphene Nanoplatelets

机译:石墨烯纳米片对聚乳酸和热塑性木薯淀粉反应混合物的增韧作用

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摘要

Poly(lactic acid) (PLA) was reactively blended with thermoplastic cassava starch (TPCS) and functionalized with commercial graphene (GRH) nanoplatelets in a twin-screw extruder, and films were produced by cast-film extrusion. Reactive compatibilization between PLA and TPCS phases was reached by introducing maleic anhydride and a peroxide radical during the reactive blending extrusion process. Films with improved elongation at break and toughness for neat PLA and PLA-g-TPCS reactive blends were obtained by an addition of GRH nanoplatelets. Toughness of the PLA-g-TPCS-GRH was improved by ~900% and ~500% when compared to neat PLA and PLA-g-TPCS, respectively. Crack bridging was established as the primary mechanism responsible for the improvement in the mechanical properties of PLA and PLA-g-TPCS in the presence of the nanofiller due to the high aspect ratio of GRH. Scanning electron microscopy images showed a non-uniform distribution of GRH nanoplatelets in the matrix. Transmittance of the reactive blend films decreased due to the TPCS phase. Values obtained for the reactive blends showed ~20% transmittance. PLA-GRH and PLA-g-TPCS-GRH showed a reduction of the oxygen permeability coefficient with respect to PLA of around 35% and 50%, respectively. Thermal properties, molecular structure, surface roughness, XRD pattern, electrical resistivity, and color of the films were also evaluated. Biobased and compostable reactive blend films of PLA-g-TPCS compounded with GRH nanoplatelets could be suitable for food packaging and agricultural applications.
机译:在双螺杆挤出机中将聚乳酸(PLA)与热塑性木薯淀粉(TPCS)反应共混,并用市售石墨烯(GRH)纳米片进行功能化,并通过流延膜挤出法生产薄膜。通过在反应共混挤出过程中引入马来酸酐和过氧化物自由基,可以达到PLA和TPCS相之间的反应相容性。通过添加GRH纳米片获得了纯净的PLA和PLA-g-TPCS反应性共混物,其断裂伸长率和韧性得到了改善。与纯PLA和PLA-g-TPCS相比,PLA-g-TPCS-GRH的韧性分别提高了约900%和500%。由于GRH的高长宽比,在纳米填料存在下,裂纹桥接被认为是改善PLA和PLA-g-TPCS力学性能的主要机理。扫描电子显微镜图像显示基质中GRH纳米血小板的分布不均匀。反应性共混物薄膜的透射率由于TPCS相而降低。对于反应性共混物获得的值显示〜20%的透射率。 PLA-GRH和PLA-g-TPCS-GRH相对于PLA的透氧系数分别降低了约35%和50%。还评估了膜的热性能,分子结构,表面粗糙度,XRD图案,电阻率和颜色。与GRH纳米片复合的PLA-g-TPCS生物基可堆肥反应性共混膜可适用于食品包装和农业应用。

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