Department of Life Science Engineering, Faculty of New Sciences and Technologies, University of Tehran, Tehran, Iran.
Department of Life Science Engineering, Faculty of New Sciences and Technologies, University of Tehran, Tehran, Iran.
J Mech Behav Biomed Mater. 2023 Mar;139:105642. doi: 10.1016/j.jmbbm.2022.105642. Epub 2023 Jan 5.
In this study, a combination of polylactic acid polymer and thermoplastic polyurethane with the addition of nano-clay particles was used. The reason for using clay nanoparticles and their strength is the low price and availability of this material. Adding nano-clay particles to the polymer composition improves the mechanical properties of the composite as they will interact with functional groups of the polymer. The results of the FTIR spectroscopy confirmed the presence of three components in the compound indicating that no chemical reactions occurred among the three components during the compounding process. The FE-SEM images taken from the compounds showed that TPU and nano-clay particles were evenly distributed in the PLA matrix. The DMTA results were utilized to determine the transfer temperature of the compounds as well as the storage and loss modulus and the shape memory properties. The XRD spectroscopy was used to determine the crystallinity and exfoliation of the nanoparticles. The mechanical properties of the fabricated polymer compounds were determined. It was found that the sample with 3% by weight of clay nanoparticles had the highest strength, and the sample with 5 wt% of clay nanoparticles had the highest toughness among nanocomposites. According to the hardness measurement, the sample with 5% by weight of clay nanoparticles has the highest hardness amongst all prepared composites. The memory properties of the prepared nanocomposites showed a significant improvement with increasing the amount of nanoparticles. This study showed the suitability and efficiency of PLA, TPU, and clay nanoparticle melt mixing methods in achieving a relatively tough shape memory composite. At the same time, this method is also inexpensive and scalable.
在这项研究中,使用了聚乳酸聚合物和热塑性聚氨酯的组合,并添加了纳米粘土颗粒。选择使用纳米粘土颗粒的原因是这种材料价格低廉、容易获得。将纳米粘土颗粒添加到聚合物组合物中,可以提高复合材料的机械性能,因为它们会与聚合物的官能团相互作用。傅里叶变换红外光谱(FTIR)的结果证实了化合物中存在三种成分,这表明在共混过程中三种成分之间没有发生化学反应。从化合物中拍摄的 FE-SEM 图像表明,TPU 和纳米粘土颗粒在 PLA 基体中均匀分布。动态力学分析(DMTA)结果用于确定化合物的转移温度以及储存和损耗模量和形状记忆性能。X 射线衍射光谱(XRD)用于确定纳米颗粒的结晶度和剥离情况。测定了所制备的聚合物化合物的机械性能。结果发现,在重量比为 3%的粘土纳米粒子的样品中具有最高的强度,在重量比为 5%的粘土纳米粒子的样品中具有最高的韧性。根据硬度测量,在所有制备的复合材料中,重量比为 5%的粘土纳米粒子的样品具有最高的硬度。所制备的纳米复合材料的记忆性能随着纳米粒子数量的增加而显著提高。本研究表明,在实现相对坚韧的形状记忆复合材料方面,聚乳酸、热塑性聚氨酯和粘土纳米颗粒的熔融混合方法是合适且有效的。同时,这种方法也很便宜且具有可扩展性。