Bhunia Ritamay, Siddiqui Shahil, Garg Ashish, Gupta Raju Kumar
ACS Appl Mater Interfaces. 2019 Apr 17;11(15):14329-14339. doi: 10.1021/acsami.9b01359. Epub 2019 Apr 2.
Dielectric polymer nanocomposites with a high breakdown field and high dielectric constant have drawn significant attention in modern electrical and electronic industries due to their potential applications in dielectric and energy storage systems. The interfaces of the nanomaterials play a significant role in improving the dielectric performance of polymer nanocomposites. In this work, polydopamine (dopa)-functionalized TiO-BaTiO-TiO (TiO-BT-TiO@dopa) core@double-shell nanoparticles have been developed as novel nanofillers for high-energy-density capacitor applications. The hierarchically designed nanofillers help in tailoring the interfaces surrounding the polymer matrix as well as act as individual capacitors in which the core and outer TiO shell function as a capacitor plate because of their high electrical conductivity while the middle BT layer functions as a dielectric medium due to high dielectric constant. Detailed electrical characterizations have revealed that TiO-BT-TiO@dopa/poly(vinylidene fluoride) (PVDF) possesses a higher relative dielectric permittivity (ε), breakdown strength ( E), and energy density as compared to those of PVDF, TiO/PVDF, TiO@dopa/PVDF, and TiO-BT@dopa/PVDF polymer nanocomposites. The ε and energy density of TiO-BT-TiO@dopa/PVDF were 12.6 at 1 kHz and 4.4 J cm at 3128 kV cm, respectively, which were comparatively much higher than those of commercially available biaxially oriented polypropylene having ε of 2.2 and the energy density of 1.2 J cm at a much higher electric field of 6400 kV cm. It is expected that these results will further open new avenues for the design of novel architecture for high-performance polymer nanocomposite-based capacitors having core@multishell nanofillers with tailored interfaces.
具有高击穿场强和高介电常数的介电聚合物纳米复合材料因其在介电和能量存储系统中的潜在应用而在现代电气和电子工业中引起了广泛关注。纳米材料的界面在改善聚合物纳米复合材料的介电性能方面起着重要作用。在这项工作中,聚多巴胺(多巴)功能化的TiO-BaTiO-TiO(TiO-BT-TiO@dopa)核@双壳纳米粒子已被开发为用于高能量密度电容器应用的新型纳米填料。这种分层设计的纳米填料有助于定制聚合物基体周围的界面,并且还充当单个电容器,其中核和外层TiO壳由于其高电导率而充当电容器极板,而中间的BT层由于高介电常数而充当介电介质。详细的电学表征表明,与PVDF、TiO/PVDF、TiO@dopa/PVDF和TiO-BT@dopa/PVDF聚合物纳米复合材料相比,TiO-BT-TiO@dopa/聚偏二氟乙烯(PVDF)具有更高的相对介电常数(ε)、击穿强度(E)和能量密度。TiO-BT-TiO@dopa/PVDF在1 kHz时的ε和能量密度分别为12.6和在3128 kV/cm时为4.4 J/cm³,这比市售双轴取向聚丙烯在6400 kV/cm的高得多的电场下ε为2.2和能量密度为1.2 J/cm³相比要高得多。预计这些结果将进一步为设计具有定制界面的基于核@多壳纳米填料的高性能聚合物纳米复合材料电容器的新型结构开辟新途径。