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Semicrystalline Structure Dielectric Property Relationship and Electrical Conduction in a Biaxially Oriented Poly(vinylidene fluoride) Film under High Electric Fields and High Temperatures

机译:高电场和高温下双轴取向聚偏二氟乙烯薄膜的半晶体结构介电特性关系和导电性

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摘要

Poly(vinylidene fluoride) (PVDF)-based homopolymers and copolymers are attractive for a broad range of electroactive applications because of their high dielectric constants. Especially, biaxially oriented PVDF (BOPVDF) films exhibit a DC breakdown strength as high as that for biaxially oriented polypropylene films. In this work, we revealed the molecular origin of the high dielectric constant via study of a commercial BOPVDF film. By determination of the dielectric constant for the amorphous phase in BOPVDF, a high value of ca. 21-22 at 25 degrees C was obtained, and a three-phase (i.e., lamellar crystal/oriented interphase/amorphous region) semicrystalline model was proposed to explain this result. Meanwhile, electronic conduction mechanisms in BOPVDF under high electric fields and elevated temperatures were investigated by thermally stimulated depolarization current (TSDC) spectroscopy and leakage current studies. Space charge injection from metal electrodes was identified as a major factor for electronic conduction when BOPVDF was poled above 75 degrees C and 20 MV/m. In addition, when silver or aluminum were used as electrodes, new ions were generated from electrochemical reactions under high fields. Due to the electrochemical reactions between PVDF and the metal electrode, a question is raised for practical electrical applications using PVDF and its copolymers under high-field and high-temperature conditions. A potential method to prevent electrochemical degradation of PVDF is proposed in this study.
机译:基于聚偏二氟乙烯(PVDF)的均聚物和共聚物因其高介电常数而吸引了广泛的电活性应用。特别地,双轴取向的PVDF(BOPVDF)膜表现出与双轴取向的聚丙烯膜一样高的DC击穿强度。在这项工作中,我们通过研究商业BOPVDF膜揭示了高介电常数的分子起源。通过确定BOPVDF中非晶相的介电常数,可得出高值。提出了在25摄氏度下21-22的结果,并提出了一个三相(即层状晶体/取向相间/非晶区域)半结晶模型来解释这一结果。同时,通过热激发去极化电流(TSDC)光谱和泄漏电流研究,研究了BOPVDF在高电场和高温下的电子传导机理。当BOPVDF极化超过75摄氏度和20 MV / m时,从金属电极注入的空间电荷被确定为电子传导的主要因素。另外,当使用银或铝作为电极时,高电场下的电化学反应会产生新的离子。由于PVDF与金属电极之间的电化学反应,使用PVDF及其共聚物在高电场和高温条件下的实际电气应用提出了一个问题。在这项研究中提出了一种防止PVDF电化学降解的潜在方法。

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