Department of Chemical Engineering, Indian Institute of Technology Kanpur , Kanpur 208016, India.
School of Mechanical and Materials Engineering, Washington State University , Pullman, Washington 99164, United States.
Chem Rev. 2016 Apr 13;116(7):4260-317. doi: 10.1021/acs.chemrev.5b00495. Epub 2016 Apr 4.
Dielectric polymer nanocomposites are rapidly emerging as novel materials for a number of advanced engineering applications. In this Review, we present a comprehensive review of the use of ferroelectric polymers, especially PVDF and PVDF-based copolymers/blends as potential components in dielectric nanocomposite materials for high energy density capacitor applications. Various parameters like dielectric constant, dielectric loss, breakdown strength, energy density, and flexibility of the polymer nanocomposites have been thoroughly investigated. Fillers with different shapes have been found to cause significant variation in the physical and electrical properties. Generally, one-dimensional and two-dimensional nanofillers with large aspect ratios provide enhanced flexibility versus zero-dimensional fillers. Surface modification of nanomaterials as well as polymers adds flavor to the dielectric properties of the resulting nanocomposites. Nowadays, three-phase nanocomposites with either combination of fillers or polymer matrix help in further improving the dielectric properties as compared to two-phase nanocomposites. Recent research has been focused on altering the dielectric properties of different materials while also maintaining their superior flexibility. Flexible polymer nanocomposites are the best candidates for application in various fields. However, certain challenges still present, which can be solved only by extensive research in this field.
介电聚合物纳米复合材料作为许多先进工程应用的新型材料正在迅速崛起。在这篇综述中,我们全面回顾了铁电聚合物,特别是聚偏二氟乙烯(PVDF)和基于 PVDF 的共聚物/共混物作为高储能电容器应用的介电纳米复合材料中潜在组分的使用。已经彻底研究了聚合物纳米复合材料的各种参数,如介电常数、介电损耗、击穿强度、能量密度和柔韧性。不同形状的填料被发现会导致物理和电性能的显著变化。一般来说,具有大纵横比的一维和二维纳米填料相对于零维填料提供了更高的柔韧性。纳米材料和聚合物的表面改性为所得纳米复合材料的介电性能增添了风味。如今,三相纳米复合材料无论是填料的组合还是聚合物基体的组合,都有助于进一步提高介电性能,与两相纳米复合材料相比。最近的研究集中在改变不同材料的介电性能的同时保持其优异的柔韧性。柔性聚合物纳米复合材料是应用于各种领域的最佳候选材料。然而,某些挑战仍然存在,只有通过该领域的广泛研究才能解决。