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首页> 外文期刊>Materials science & engineering >Reduced graphene oxide and PEG-grafted TEMPO-oxidized cellulose nanocrystal reinforced poly-lactic acid nanocomposite film for biomedical application
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Reduced graphene oxide and PEG-grafted TEMPO-oxidized cellulose nanocrystal reinforced poly-lactic acid nanocomposite film for biomedical application

机译:还原氧化石墨烯和PEG接枝的TEMPO氧化纤维素纳米晶增强聚乳酸纳米复合膜的生物医学应用

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In this work, both cellulose nanocrystals (CNC) and reduced graphene oxide (rGO) were reinforced into polylactic acid (PLA) to enhance the stiffness, strength and thermal stability of the pure polymer i.e. PLA. To enhance the uniform dispersion of CNC (which is a major concern with PLA) and rGO in the hydrophobic polymer, matrix, CNC's surface was first modified using TEMPO (2,2,6,6-tetramethylpiperidine-1-oxyl radical) oxidation method followed by surface grafting of TEMPO-oxidized CNC (TOCNC) performed with polyethylene glycol (PEG). The PEG-grafting on crystalline region of cellulose nanofibrils was achieved through ionic bonds by applying ionexchange method (simple and easy method). The obtained PEG-grafted-TOCNC indicated uniform dispersion at the nanoelement level in non-polar (organic) compound i.e. chloroform. Further, the PEG-grafted-TOCNC/chloroform with different blend ratios, PLA/chloroform and rGO/chloroform solution were mixed together and solvent casted onto a petri-dish to obtain PLA/PEG-TOCNC/rGO nanocomposite film. The tensile strength and thermal stability were remarkably improved for the film containing highest wt% of modified CNC. In addition to this, the film showed reduced water vapor barrier properties and antioxidant activity which enables it to be used as a packaging films. Moreover, the film displayed negligible toxicity and cytocompatibility to fibroblast cells C3H10T1/2. These attractive properties of PLA/PEG-TOCNC/rGO nanocomposite film render the application of film as a scaffold in tissue engineering field and in packaging application.
机译:在这项工作中,纤维素纳米晶体(CNC)和还原的氧化石墨烯(rGO)均被增强为聚乳酸(PLA),以增强纯聚合物(即PLA)的刚度,强度和热稳定性。为了增强CNC(这是PLA的主要关注点)和rGO在疏水性聚合物,基质中的均匀分散,首先使用TEMPO(2,2,6,6-四甲基哌啶-1-氧基)氧化方法对CNC的表面进行改性。然后用聚乙二醇(PEG)对TEMPO氧化的CNC(TOCNC)进行表面接枝。通过应用离子交换法(简单方法),通过离子键实现了纤维素纳米纤维结晶区域的PEG接枝。所得的PEG接枝的TOCNC表明在非极性(有机)化合物即氯仿中在纳米元素水平上均匀分散。此外,将具有不同混合比例的PEG接枝的TOCNC /氯仿,PLA /氯仿和rGO /氯仿溶液混合在一起,并将溶剂流延到培养皿上,以获得PLA / PEG-TOCNC / rGO纳米复合膜。对于含有最高wt%的改性CNC的膜,拉伸强度和热稳定性得到显着改善。除此之外,该膜还显示出降低的水蒸气阻隔性和抗氧化活性,使其能够用作包装膜。此外,该膜对成纤维细胞C3H10T1 / 2的毒性和细胞相容性微不足道。 PLA / PEG-TOCNC / rGO纳米复合薄膜的这些吸引人的特性使得该薄膜可作为支架在组织工程领域和包装应用中的应用。

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