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首页> 外文期刊>Journal of Electronic Materials >Iron-Doped, Mullite-Impregnated PVDF Composite: An Alternative Separator for a High Charge Storage Ceramic Capacitor
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Iron-Doped, Mullite-Impregnated PVDF Composite: An Alternative Separator for a High Charge Storage Ceramic Capacitor

机译:铁掺杂,莫来石浸渍的PVDF复合材料:用于高电荷储存陶瓷电容器的替代分离器

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摘要

In this communication, the formation mechanism of the electroactive phase, morphology and the dielectric activities of increasing doping concentration (0-1.2M.W % of mullite) of Fe2+ ion-doped, mullite-impregnated polyvinylidene fluoride (PVDF) nanocomposite have been investigated. Differential thermal analysis (DTA) confirms the formation of an electroactive phase, and Fourier transform infrared spectroscopy (FTIR) showed that the phase increases simultaneously and attains the maximum increment of 2.6 times compared to pristine PVDF. X-ray diffraction (XRD) spectra also agreed well with the -phase increment behaviour and also confirmed the presence of required mullite phases. Field emission scanning electron microscopy (FESEM) images indicate the strong interaction between the polymer matrix and different concentrations of Fe2+ ion-doped mullite particles, resulting in enhanced electroactive phase formation and large dielectric constant of the nanocomposite films followed by significant low dielectric loss with high ac conductivity compared to pristine PVDF films at room temperature. This doped polymer composite can be used as a high dielectric separator and, using this separator, we have successfully fabricated a high-charge-storage device. This paper also demonstrates that the loading of conductive Fe2+ ions within the highly insulating mullite matrix has a critical concentration for the enhancement and nucleation of the electroactive phase of the PVDF polymer. In this critical concentration, the highest formation of a network and maximum numbers of homogeneously distributed iron-doped mullite (FeM) particles in PVDF matrix improves the effective interfacial polarization by Maxwell-Wagner-Sillar (MWS) polarization effect which is responsible for the enhancement of dielectric constant and ac conductivity followed by significant tangent loss. So, it can be concluded that the incorporation of Fe2+-doped mullite into PVDF matrix is an effective way to fabricate a high dielectric separator of high-charge-storage electronic devices.
机译:在该通信中,已经研究了电活性相,形态和掺杂掺杂掺杂,莫尔钛矿浸渍的聚偏二氟乙烯(PVDF)纳米复合材料的掺杂浓度(0-1.2M.W%)的掺杂浓度(0-1.2M.W%)的形成机制。差分热分析(DTA)证实了电活性相的形成,傅里叶变换红外光谱(FTIR)显示相位同时增加并达到与原始PVDF相比的2.6倍的最大增量。 X射线衍射(XRD)光谱还符合相对的增量行为,并确认存在所需的莫来石阶段。场发射扫描电子显微镜(FeSEM)图像表明聚合物基质和不同浓度的Fe2 +离子掺杂莫来石颗粒之间的强相互作用,导致纳米复合膜的增强的电活性相和大介电常数,然后具有高介电损耗交流电导率与室温下的原始PVDF膜相比。该掺杂的聚合物复合材料可用作高介电分离器,并使用该隔膜,我们已成功制造了高芯存储装置。本文还表明,高度绝缘莫来石基质内的导电Fe2 +离子的负载具有临界浓度,用于增强PVDF聚合物的电活性相的增强和成核。在这种临界浓度中,PVDF矩阵中的网络和最大数量的网络和最大数量的PVDF矩阵中的颗粒(FEM)粒子提高了Maxwell-Wagner-Sillar(MWS)偏振效果的有效界面极化,这对增强负责介电常数和交流电导率,然后进行显着切线损失。因此,可以得出结论,将Fe2 + - 掺杂的莫来石掺入PVDF矩阵是制造高电荷存储电子设备的高介电分离器的有效方法。

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