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FUNCTIONALIZED CELLULOSE NANOCRYSTALS FOR IMPROVING THE MECHANICAL PROPERTIES OF POLY(LACTIC ACID)

机译:功能性纤维素纳米晶体,可改善聚乳酸的力学性能

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Biopolymers are emerging materials with numerous capabilities of minimizing the environmental hazards caused by synthetic materials. The competitive mechanical properties of bio-based poly(lactic acid) (PLA) reinforced with cellulose nanocrystals (CNCs) have attracted a huge interest in improving the mechanical properties of the corresponding nanocomposites. To obtain optimal properties of PLA-CNC nanocomposites, the compatibility between PLA and CNCs needs to be improved through uniform dispersion of CNCs into PLA. The application of chemical surface functionalization technique is an essential step to improve the interaction between hydrophobic PLA and hydrophilic CNCs. In this study, a combination of a time-efficient esterification technique and masterbatch approach was used to improve the CNCs dispersibility in PLA. Nanocomposites reinforced by 1, 3, and 5 wt% functionalized CNCs were prepared using twin screw extrusion followed by injection molding process. The mechanical and dynamic mechanical properties of pure PLA and nanocomposites were studied through tensile, impact and dynamic mechanical analysis. The impact fractured surfaces were characterized using scanning electron microscopy. The mechanical test results exhibited that tensile strength and modulus of elasticity of nanocomposites improved by 70% and 11% upon addition of functionalized CNCs into pure PLA. The elongation at break and impact strength of nanocomposites exhibited 43% and 35% increase as compared to pure PLA. The rough and irregular fracture surface in nanocomposites confirmed the higher ductility in PLA nanocomposites as compared to pure PLA. The incorporation of functionalized CNCs into PLA resulted in an increase in storage modulus and a decrease in tan 8 intensity which was more profound in nanocomposites reinforced with 3 wt% functionalized CNCs.
机译:生物聚合物是新兴的材料,具有将合成材料造成的环境危害降至最低的众多功能。纤维素纳米晶体(CNC)增强的生物基聚乳酸(PLA)的竞争性机械性能引起了人们对改善相应纳米复合材料机械性能的巨大兴趣。为了获得PLA-CNC纳米复合材料的最佳性能,需要通过将CNCs均匀分散在PLA中来提高PLA和CNCs之间的兼容性。化学表面功能化技术的应用是改善疏水性PLA与亲水性CNC之间相互作用的必不可少的步骤。在这项研究中,结合了省时酯化技术和母料方法,以提高CNC在PLA中的分散性。使用双螺杆挤出,然后通过注塑工艺制备由1、3和5 wt%的功能化CNC增强的纳米复合材料。通过拉伸,冲击和动态力学分析研究了纯PLA和纳米复合材料的力学和动态力学性能。使用扫描电子显微镜表征冲击断裂的表面。力学测试结果表明,在纯PLA中添加功能化CNC后,纳米复合材料的拉伸强度和弹性模量分别提高了70%和11%。与纯PLA相比,纳米复合材料的断裂伸长率和冲击强度分别显示出43%和35%的增长。纳米复合材料的粗糙和不规则断裂表面证实,与纯PLA相比,PLA纳米复合材料具有更高的延展性。将功能化的CNC结合到PLA中导致储能模量增加和tan 8强度降低,这在用3 wt%的功能化的CNC增强的纳米复合材料中更为明显。

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