Cheng Yujia, Yu Guang
Mechanical and Electrical Engineering Institute, Zhongshan Institute, University of Electronic Science and Technology of China, Zhongshan 528400, China.
Molecules. 2024 Sep 30;29(19):4650. doi: 10.3390/molecules29194650.
This study investigates the correlation between the interface structure and macroscopic dielectric properties of polymer-based nanocomposite materials. Utilizing bisphenol-A (BPA) epoxy resin (EP) as the polymer matrix and the commonly employed layered phyllosilicate montmorillonoid (MMT) as the nanometer-scale dispersive phase, nano-MMT/EP composites were synthesized using composite technology. The microstructure of the composite samples was characterized through XRD, FTIR, SEM, and TEM. Changes in the morphology of the nanocomposite interface were observed with varying MMT content, subsequently impacting dielectric polarization and loss. Experimental measurements of the dielectric spectrum of the nano-MMT/EP were conducted, and the influence of the material interface, at different nano-MMT contents, on the dielectric relaxation was analyzed. The study delves into the effect of the nanocomposite interface structure on ion dissociation and migration barriers, exploring the ionic conductivity of nano-MMT/EP. Lastly, an analysis of the impact of different nano-MMT contents on the dielectric conductivity is presented. From the experimental results, the arranging regularity of polymer molecules in the interface area raises. In the matrix, the ion migration barriers decrease significantly. The higher the MMT content in the interface, the lower the migration barrier is. Until the MMT content exceeds the threshold, the agglomerated micro-particles form, which decreases the polymers' space distribution regularity, and the ions migration barrier raises. According to the changes in the rule of the ions migration barrier with the composite interface structure content, the reason for dielectric conductivity changes can be judged.
本研究探讨了聚合物基纳米复合材料的界面结构与宏观介电性能之间的相关性。以双酚A(BPA)环氧树脂(EP)为聚合物基体,以常用的层状叶蜡石类蒙脱石(MMT)为纳米级分散相,采用复合技术合成了纳米MMT/EP复合材料。通过XRD、FTIR、SEM和TEM对复合样品的微观结构进行了表征。观察了不同MMT含量下纳米复合材料界面形态的变化,进而影响介电极化和损耗。对纳米MMT/EP的介电谱进行了实验测量,并分析了不同纳米MMT含量下材料界面对介电弛豫的影响。该研究深入探讨了纳米复合材料界面结构对离子解离和迁移势垒的影响,探索了纳米MMT/EP的离子导电性。最后,分析了不同纳米MMT含量对介电导率的影响。从实验结果来看,界面区域聚合物分子的排列规整性提高。在基体中,离子迁移势垒显著降低。界面中MMT含量越高,迁移势垒越低。直到MMT含量超过阈值,团聚的微粒形成,这降低了聚合物的空间分布规整性,离子迁移势垒升高。根据离子迁移势垒随复合界面结构含量的变化规律,可以判断介电导率变化的原因。