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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Biodegradable poly(lactic acid) nanocomposites reinforced and toughened by carbon nanotubes/clay hybrids
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Biodegradable poly(lactic acid) nanocomposites reinforced and toughened by carbon nanotubes/clay hybrids

机译:可生物降解的聚(乳酸)纳米复合材料通过碳纳米管/粘土杂种增强和增韧

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摘要

Polylactic acid (PLA) is a biodegradable and biocompatible polyester derived from renewable resources like corn starch, presenting great potential in clinical applications like tissue engineering, implants and drug delivery systems. However, the intrinsic brittleness restricts its real applications. In this work, PLA nanocomposites were prepared by incorporating a small amount of carboxyl functionalized multi-walled carbon nanotubes (CNTs) and surface compatabilized montmorillonite (MMT) via technologies of freeze-drying and masterbatch-based melt blending. In the resulting nanocomposites, a well-distributed nano-filler network with microstructures of 1-D CNTs/2-D MMT platelets is formed favored by the enhanced interfacial interaction between the organic modified fillers with PLA matrix. Thanks to the well dispersed organic modified nanofillers, a large number of microcracks and extremely stretched PIA matrix are induced during tensile process, dissipating amounts of energy. As a resuit, the filler networks reinforce PIA with increment of 19% in modulus, remarkably increase by 13.8 times in toughness relative to PLA control without sacrificing strength. Thus, the PIA nanocomposites with excellent properties prepared through the facile and effective route possess broad prospect in biomedical applications. (C) 2020 Published by Elsevier B.V.
机译:聚乳酸(PLA)是一种可生物降解的和生物相容性聚酯,衍生自玉米淀粉等可再生资源,在组织工程,植入物和药物递送系统等临床应用中呈现出巨大的潜力。然而,内在脆性限制了其真实应用。在这项工作中,通过掺入少量羧基官能化的多壁碳纳米管(CNT)和表面通过冷冻干燥和基于母料的熔融混合来制备PLA纳米复合材料。在所得纳米复合材料中,通过具有PLA基质的有机改性填料之间的增强的界面相互作用,形成具有1-D CNT / 2-D MMT血小板的微结构的良好分布的纳米填充网络。由于井分散的有机改性纳米填料,在拉伸过程中诱导了大量的微裂纹和极其拉伸的PIA基质,耗散能量量。作为饲养,填充网络加强了模量增加了19%的PIA,相对于PLA控制的韧性显着增加了13.8倍,而不会牺牲强度。因此,具有通过容易和有效途径制备优异性质的PIA纳米复合材料具有较广泛的生物医学应用前景。 (c)2020由elsevier b.v发布。

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