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Promising PLA-Functionalized MWCNT Composites to Use in Nanotechnology

机译:有前途的PLA功能化MWCNT复合材料可用于纳米技术

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Films based on polylactic acid (PLA) reinforced with multi-walled carbon nanotubes (MWCNT) were developed after using an excellent methodology to ensure an optimum dispersion of the filler in the matrix. The functionalization of MWCNT was carried out through a Fenton reaction to generate hydroxyl (OH) and carboxyl (COOH) groups on their walls. After that, COOH groups were lengthened by reacting with thionyl chloride and then with triethylene glycol to achieve a terminal OH distanced from the wall of the MWCNT. Nanocomposites based on PLA containing different concentrations of functionalized filler (fMWCNT: 0.026, 0.10, and 0.18 wt%) were prepared by casting. The influence of filler concentration was investigated using some techniques such as scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FT-IR), thermogravimetric analysis (TGA), water vapor permeability (WVP) and uniaxial tensile mechanical properties. Excellent dispersion of fMWCNT was observed suggesting that the technique of functionalization used was appropriate. All nanocomposites presented great stability, allowing them to be processed to temperatures reaching 300 degrees C. Furthermore, an increasing trend of ultimate tensile strength (sigma(u)) up to 20% and a decrease of WVP around 40% with the addition of only 0.10 wt% of fMWCNT were obtained. Considering these results, the new biodegradable nanocomposites developed in this work could be very promising to replace synthetic plastics that currently are used in different areas such as nanotechnology, packaging and biomedicine. (C) 2015 Society of Plastics Engineers
机译:在使用出色的方法以确保填料在基体中实现最佳分散之后,开发了基于多壁碳纳米管(MWCNT)增强的基于聚乳酸(PLA)的薄膜。 MWCNT的功能化通过Fenton反应进行,以在其壁上生成羟基(OH)和羧基(COOH)。之后,通过与亚硫酰氯然后与三甘醇反应来延长COOH基团,以使末端OH与MWCNT的壁间隔开。通过流延制备基于PLA的包含不同浓度的官能化填料(fMWCNT:0.026、0.10和0.18wt%)的纳米复合材料。使用扫描电子显微镜(SEM),傅立叶变换红外光谱(FT-IR),热重分析(TGA),水蒸气透过率(WVP)和单轴拉伸机械性能等技术研究了填料浓度的影响。观察到fMWCNT的优异分散性,表明使用的功能化技术是合适的。所有纳米复合材料都表现出很高的稳定性,使其可以加工至300摄氏度的温度。此外,仅添加纳米复合材料,其极限抗拉强度(sigma(u))的增长趋势高达20%,WVP下降约40%。获得0.10重量%的fMWCNT。考虑到这些结果,这项工作中开发的新型可生物降解的纳米复合材料将很有希望替代目前在不同领域(如纳米技术,包装和生物医学)中使用的合成塑料。 (C)2015年塑料工程师学会

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