Parangusan Hemalatha, Bhadra Jolly, Ahmad Zubair, Mallick Shoaib, Touati Farid, Al-Thani Noora
Qatar University Young Scientist Center (QUYSC), Qatar University P.O. Box 2713 Doha Qatar
Centre for Advanced Materials (CAM), Qatar University P.O. Box 2713 Doha Qatar.
RSC Adv. 2021 Aug 26;11(46):28735-28743. doi: 10.1039/d1ra02842a. eCollection 2021 Aug 23.
The electrospinning technique has been successfully used to prepared micro-fibers of the poly(lactic acid)/polyaniline-zinc oxide (PLA/PANI-ZnO) composite. The polyaniline-zinc oxide (PANI-ZnO) nanocomposites are synthesized by hydrothermal and polymerization methods. X-ray diffraction techniques are used to study the structural properties of the PLA/PANI-ZnO composite fibers and the PANI-ZnO nanocomposite. The average crystallite size of the PANI-ZnO nanocomposite is found to be 36 nm. The morphology and diameter of the composite fibers are analyzed by scanning electron microscopy (SEM). The average fiber diameter of the pure poly(lactic acid) (PLA) fiber is around 2.5 μm and that of the PLA/PANI-ZnO composite fiber is around 1.4 μm. Differential scanning calorimetry (DSC) provides the thermal properties of the PLA/PANI-ZnO composite fibers. The melting temperature ( ) for the pure PLA is observed at 149.3 °C, and it is shifted to 153.0 °C for the PLA/PANI-ZnO composite fibers. The enhanced thermal properties of the composite fibers are due to the interaction between the polymer and the nanoparticles. The water contact angle measurements probe the surface hydrophilicity of the PLA/PANI-ZnO composite fibers. The role of the PANI-ZnO nanocomposite on the sensing behavior of PLA fibers has also been investigated. The humidity sensing properties of the composite fiber based sensor are studied in the relative humidity (RH) range of 20-90% RH. The experimental results show that the composite fiber exhibited good response (85 s) and recovery (120 s) times. These results indicate that the one-dimensional (1D) fiber structure enhances the humidity sensing properties.
静电纺丝技术已成功用于制备聚乳酸/聚苯胺-氧化锌(PLA/PANI-ZnO)复合材料的微纤维。聚苯胺-氧化锌(PANI-ZnO)纳米复合材料通过水热法和聚合方法合成。采用X射线衍射技术研究PLA/PANI-ZnO复合纤维和PANI-ZnO纳米复合材料的结构性能。发现PANI-ZnO纳米复合材料的平均微晶尺寸为36nm。通过扫描电子显微镜(SEM)分析复合纤维的形态和直径。纯聚乳酸(PLA)纤维的平均纤维直径约为2.5μm,PLA/PANI-ZnO复合纤维的平均纤维直径约为1.4μm。差示扫描量热法(DSC)提供PLA/PANI-ZnO复合纤维的热性能。观察到纯PLA的熔点( )为149.3℃,而PLA/PANI-ZnO复合纤维的熔点则移至153.0℃。复合纤维热性能的增强归因于聚合物与纳米颗粒之间的相互作用。水接触角测量探测了PLA/PANI-ZnO复合纤维的表面亲水性。还研究了PANI-ZnO纳米复合材料对PLA纤维传感行为的作用。在20-90%相对湿度(RH)范围内研究了基于复合纤维的传感器的湿度传感性能。实验结果表明,复合纤维表现出良好的响应(85秒)和恢复(120秒)时间。这些结果表明一维(1D)纤维结构增强了湿度传感性能。