Ferroelectric, Piezoelectric and Dielectric Properties of Novel Polymer Nanocomposites

M. Panda
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Abstract

In this chapter, the Ferroelectric, Piezoelectric and Dielectric behavior of novel polymer/ceramic nano-composite (PCC) based on ferroelectric polymer [polyvinyledene fluoride (PVDF)] & nano Barium Titanate (n-BaTiO3) with different volume fractions of n-BaTiO3 (fBaTiO3), prepared through the novel cold pressing method has been discussed. The ferroelectric parameters of PCC are attributed to spherulites of PVDF, the increase of n-BaTiO3 and the ordered homogenous structure due to the novel cold pressing. The clustering of ceramic fillers is responsible for randomization of the structures of these composite ferroelectrics for some samples, leading to decrease of electrical polarisations. The piezoelectricity and piezoelectric coefficients of these composites ferroelectrics, increases with increase of ceramic filer content and remains constant beyond a certain ratio. However, the dielectric properties increase linearly as a function of ceramic content due to increase of interfaces/interfacial polarisations. The enhancement of effective dielectric constant (ɛeff) is attributed to the large interfacial polarization arising due to the charge storage at the spherulites of PVDF and at the polymer/filler interfaces of PCC and have been explained on the basis of sum effect with the help of the standard models. The achieved lower loss tangent (Tan δ) for the PCC as compared to the polymer/metal composites (PMC) is attributed to the highly insulating nature of PVDF & semiconducting n-BaTiO3. The thermal stability of the composites is also maintained due to the higher melting temperature (170°C) of PVDF. The cold pressed PCC based on PVDF are going to act as better polymer ferroelectric/dielectrics for memory and electrical energy storage applications.
新型聚合物纳米复合材料的铁电、压电和介电性能
本章讨论了采用新型冷压法制备的铁电聚合物[聚偏氟乙烯(PVDF)]与n-BaTiO3 (fBaTiO3)体积分数不同的纳米钛酸钡(n-BaTiO3)为基体的新型聚合物/陶瓷纳米复合材料(PCC)的铁电、压电和介电性能。PCC的铁电参数归因于PVDF的球晶化,n-BaTiO3的增加以及新型冷压导致的有序均匀结构。在某些样品中,陶瓷填料的聚类导致这些复合铁电体结构的随机化,从而导致电极化的降低。这些铁电材料的压电系数和压电系数随陶瓷填料含量的增加而增大,并在一定比例以上保持不变。然而,由于界面/界面极化的增加,介电性能作为陶瓷含量的函数线性增加。有效介电常数的提高是由于PVDF的球晶和PCC的聚合物/填料界面上电荷的储存引起了较大的界面极化,并在求和效应的基础上利用标准模型进行了解释。与聚合物/金属复合材料(PMC)相比,PCC的损耗切线(Tan δ)较低,这归功于PVDF和半导体n-BaTiO3的高度绝缘特性。由于PVDF的较高熔融温度(170℃),也保持了复合材料的热稳定性。基于PVDF的冷压PCC将作为更好的聚合物铁电/介电体用于存储和电能存储应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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