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A distinct mutual phase transition in a new PVDF based lead-free composite film with enhanced dielectric and energy storage performance and low loss

机译:一种具有增强的介电和能量存储性能和低损耗的新型基于PVDF基无铅复合膜中的不同互相转变

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摘要

Environment-friendly polyvinylidene fluoride (PVDF) based composite films were fabricated by using a high permittivity lead-free Ba(Sn, Ti) O-3-(Ba, Ca) TiO3 (BCTS) ceramic filler with a special 'tricritical' phase structure. The dielectric and energy storage performance and the microstructure evolution of the samples were investigated. Infrared spectroscopy, X-ray diffraction (XRD) and synchrotron radiation XRD results showed that the plate-shaped BCTS nanopowders induced a distinct mutual phase transition but not the usual nonpolar to polar one. Consequently, a largely increased dielectric constant (epsilon(r)), a higher energy density (similar to 4 J cm(-3) at 200 kV mm(-1)) and a dielectric loss even lower than that of neat PVDF were simultaneously achieved with a very small loading (0.59 vol%) of BCTS. Theoretical simulations showed that er was well predicted by the effective medium theory and the modified Lichtenecker model, implying the important role of the size and shape of filler particles in performance. A special transitional stratification layer observed around the BCTS particles implies heterogeneous nucleation of the polymer. A mechanism due to the interplay of crystallization and possible stress and electrostatic interaction was proposed to explain the phase evolution. The results may provide new insight into the understanding of the structural characteristics of the composites and a new strategy for tailoring their performance.
机译:通过使用具有特殊“三分基准”相结构的高介电常数无铅Ba(Sn,Ti)O-3-(Ba,Ca)TiO3(BA,CA)TiO3(BCE)陶瓷填料,通过使用具有特殊的“三分基本”相结构来制造环状聚偏二氟乙烯(PVDF)的复合膜。研究了介电和能量存储性能和样品的微观结构演化。红外光谱,X射线衍射(XRD)和同步辐射XRD结果表明,板状BCT纳米粉末诱导明显的互相转变,但不是通常的非极性彼此。因此,大量增加的介电常数(ε(R)),较高的能量密度(类似于4J厘米(-3),在200kV mm(-1))和甚至低于整齐PVDF的介电损耗同时通过非常小的装载(0.59体积%)的BCT来实现。理论模拟表明,通过有效的介质理论和改性的Lichtenecker模型预测了ER,这意味着填充颗粒在性能中的尺寸和形状的重要作用。在BCTS颗粒周围观察到的特殊过渡分层层意味着聚合物的非均相成核。提出了一种由于结晶的相互作用和可能的应力和静电相互作用而导致的机制来解释相进化。结果可以为了解对复合材料的结构特征的理解提供新的洞察力以及用于定制其性能的新策略。

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