首页> 外文期刊>ACS applied materials & interfaces >Super-Robust Polylactide Barrier Films by Building Densely Oriented Lamellae Incorporated with Ductile in Situ Nanofibrils of Poly(butylene adipate-co-terephthalate)
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Super-Robust Polylactide Barrier Films by Building Densely Oriented Lamellae Incorporated with Ductile in Situ Nanofibrils of Poly(butylene adipate-co-terephthalate)

机译:通过构建密集取向的薄片与聚己二酸丁二酯-对苯二甲酸丁二醇酯的球状原位纳米纤丝结合的超强聚乳酸阻隔膜

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Remarkable combination of excellent gas barrier performance, high strength, and toughness was realized in polylactide (PLA) composite films by constructing the supernetworks of oriented and pyknotic crystals with the assistance of ductile in situ nanofibrils of poly(butylene adipate-co-terephthalate) (PBAT). On the basis that the permeation of gas molecules through polymer materials with anisotropic structure would be more frustrated, we believe that oriented crystalline textures cooperating with inerratic amorphism can be favorable for the enhancement of gas barrier property. By taking full advantage of intensively elongational flow field, the dispersed phase of PBAT in situ forms into nanofibrils, and simultaneously sufficient row-nuclei for PLA are induced. After appropriate thermal treatment with the acceleration effect of PBAT on PLA crystallization, oriented lamellae of PLA tend to be more perfect in a preferential direction and constitute into a kind of network interconnecting with each other. At the same time, the molecular chains between lamellae tend to be more extended. This unique structure manifests superior ability in ameliorating the performance of PLA film. The oxygen permeability coefficient can be achieved as low as 2 x 10(-15) cm(3) cm cm(-2) s(-1) Pa-1, combining with the high strength, modulus, and ductility (104.5 MPa, 3484 MPa, and 110.6%, respectively). The methodology proposed in this work presents an industrially scalable processing method to fabricate super-robust PLA barrier films. It would indeed push the usability of biopolymers forward, and certainly prompt wider application of biodegradable polymers in the fields of environmental protection such as food packaging, medical packaging, and biodegradable mulch.
机译:通过在聚己二酸丁二酯-对苯二甲酸对苯二甲酸酯的可延展原位纳米原纤的帮助下构建取向晶体和方解石晶体的超网络,在聚丙交酯(PLA)复合膜中实现了优异的阻气性能,高强度和韧性的显着结合( PBAT)。基于气体分子通过具有各向异性结构的聚合物材料的渗透将受到更大的阻碍,我们认为与无定形非晶相配合的定向晶体织构可以有利于增强气体阻隔性。通过充分利用密集的延伸流场,PBAT的分散相就地形成纳米纤丝,同时诱导出足够的PLA列核。经过适当的热处理和PBAT对PLA结晶的促进作用,PLA的取向片往往会在优先方向上变得更加完美,并构成相互连接的一种网络。同时,薄层之间的分子链趋向于延长。这种独特的结构在改善PLA膜的性能方面表现出卓越的能力。氧气渗透系数可低至2 x 10(-15)cm(3)cm cm(-2)s(-1)Pa-1,并具有高强度,高模量和延展性(104.5 MPa, 3484兆帕和110.6%)。这项工作中提出的方法论提出了一种工业上可扩展的加工方法,以制造超坚固的PLA阻隔膜。确实,这将推动生物聚合物的可用性,并肯定会促使可生物降解的聚合物在食品包装,医疗包装和可生物降解覆盖物等环境保护领域得到更广泛的应用。

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