Flexible Polymer-Based Nanodielectrics Reinforced with Electrospun Composite Nanofibers for Capacitive Energy Storage

材料科学 纳米复合材料 钛酸钡 电介质 复合材料 静电纺丝 纳米颗粒 纳米纤维 玻璃化转变 聚合物 纳米技术 陶瓷 光电子学
作者
Stavros X. Drakopoulos,Jing Yang,Orestis Vryonis,Leah Williams,G. C. Psarras,Elisa Mele
出处
期刊:ACS applied polymer materials [American Chemical Society]
卷期号:4 (11): 8203-8215 被引量:17
标识
DOI:10.1021/acsapm.2c01162
摘要

Nanocomposite materials based on polydimethylsiloxane (PDMS) reinforced by electrospun poly(vinylidene fluoride) (PVDF) nanofibers and barium titanate (BTO) nanoparticles were fabricated and tested as dielectric materials for capacitive energy storage applications. Two types of BTO nanoparticles were examined, prior and after ball milling, to investigate the effect of interfacial area and size on the dielectric properties. The morphology of the produced PVDF nanofibers was evaluated via scanning electron microscopy (SEM) to ensure the optimum electrospinning conditions and verify the incorporation of BTO nanoparticles. The composite systems were analyzed by dielectric spectroscopy, and three dielectric processes were revealed: the dynamic glass-to-rubber transition processes of PDMS and PVDF and an interfacial polarization process. It was observed that the dynamic glass-to-rubber transition process of the PVDF nanofibers strongly depends on the size of the BTO nanoparticles that introduce confinement effects and affect thus the temperature dependence of the relaxation. In addition, as verified by ac conductivity, ball milling reduced the conduction of the nanocomposites by 80%, indicating the increase of the charge carrier trapping area around the BTO nanoparticles. Finally, the developed nanocomposites were tested as dielectric materials for capacitor applications at room temperature conducting charge/discharge measurements under the influence of a dc electric field, and their discharge performance and efficiency were examined at various dc voltages (50–300 V) and cycle life. Here, experimental evidence regarding the importance of interfacial area on the energy storage performance in nanodielectrics is presented that will aid the development of more efficient energy materials.
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