亲水性纳米粘土增强聚乳酸/聚己内酯共混物的力学和热性能

Chern Chiet Eng, N. Ibrahim, N. Zainuddin, H. Ariffin, W.Md.Z.W. Yunus, Y. Y. Then, C. C. Teh
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引用次数: 40

摘要

研究了亲水纳米粘土纳米聚合物PGV对聚乳酸/聚己内酯共混物力学性能的影响,并与疏水粘土蒙脱土K10进行了比较。采用熔融插层法制备了PLA/PCL/粘土复合材料,并用x射线衍射(XRD)、傅里叶红外光谱(FTIR)、热重分析(TGA)、动态力学分析(DMA)、扫描电镜(SEM)和透射电镜(TEM)对复合材料进行了表征。红外光谱显示亲水性粘土与基质之间形成氢键。XRD结果表明,粘土掺入聚合物基体后,基间距发生了位移。TEM显微图显示复合材料中团块的形成。力学性能结果表明,粘土纳米聚合物PGV的加入使PLA/PCL共混物的柔韧性提高了136.26%。热重分析表明,粘土的存在提高了共混物的热稳定性。DMA表明,粘土的加入增加了存储模量,而粘土纳米PGV的存在使两者的共混物更加接近,表明粘土的存在使PLA/PCL共混物略微增容。扫描电镜显示,纳米聚基钒的存在影响了共混物的混相。PLA/PCL共混物变得更加均匀,由单相形貌组成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancement of Mechanical and Thermal Properties of Polylactic Acid/Polycaprolactone Blends by Hydrophilic Nanoclay
The effects of hydrophilic nanoclay, Nanomer PGV, on mechanical properties of Polylactic Acid (PLA)/Polycaprolactone (PCL) blends were investigated and compared with hydrophobic clay, Montmorillonite K10. The PLA/PCL/clay composites were prepared by melt intercalation technique and the composites were characterized by X-ray Diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Thermogravimetric Analysis (TGA), Dynamic Mechanical Analysis (DMA), Scanning Electron Microscopy (SEM), and Transmission Electron Microscopy (TEM). FTIR spectra indicated that formation of hydrogen bond between hydrophilic clay with the matrix. XRD results show that shifting of basal spacing when clay incorporated into polymer matrix. TEM micrographs reveal the formation of agglomerate in the composites. Based on mechanical properties results, addition of clay Nanomer PGV significantly enhances the flexibility of PLA/PCL blends about 136.26%. TGA showed that the presence of clay improve thermal stability of blends. DMA show the addition of clay increase storage modulus and the presence of clay Nanomer PGV slightly shift two of blends become closer suggest that the presence of clay slightly compatibilizer the PLA/PCL blends. SEM micrographs revealed that presence of Nanomer PGV in blends influence the miscibility of the blends. The PLA/PCL blends become more homogeneous and consist of single phase morphology.
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