首页> 外文期刊>Advanced Functional Materials >Confined Ferroelectric Properties in Poly(vinylidene fluoride-co-chlorotrifluoroethylene)-graft-polystyrene Graft Copolymers for Electric Energy Storage Applications
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Confined Ferroelectric Properties in Poly(vinylidene fluoride-co-chlorotrifluoroethylene)-graft-polystyrene Graft Copolymers for Electric Energy Storage Applications

机译:聚(偏二氟乙烯-共氯三氟乙烯)-接枝-聚苯乙烯接枝共聚物在电能存储中的受限铁电性能

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摘要

Dielectric polymer film capacitors having high energy density, low loss and fast discharge speed are highly desirable for compact and reliable electrical power systems. In this work, we study the confined ferroelectric properties in a series of poly(vinylidene fluoride-co-chlorotrifluoroethylene)-gra/i-polystyrene [P(VDF-CTFE)-g-PS] graft copolymers, and their potential application as high energy density and low loss capacitor films. Thin films (ca. 20 (xm) are prepared by different processing methods, namely, hot-pressing or solution-casting followed by mechanical stretching at elevated temperatures. After crystallization-induced microphase separation, PS side chains are segregated to the periphery of PVDF crystals, forming a confining interfacial layer. Due to the low polarizability of this confining PS-rich layer at the amorphous-crystalline interface, the compensation polarization is substantially decreased resulting in a novel confined ferroelectric behavior in these graft copolymers. Both dielectric and ferroelectric losses are significantly reduced at the expense of a moderate decrease in discharged energy density. Our study indicates that the best performance is achieved for a P(VDF-CTFE)-g-PS graft copolymer with 34 wt-% PS; a relatively high discharged energy density of approximately 10 J cm 3 at 600 MV m"1, a low dielectric loss (tant) 0.006 at 1 kHz), and a low hysteresis loop loss (17.6%) at 550 MV rrT1.
机译:具有高能量密度,低损耗和快速放电速度的介电聚合物薄膜电容器对于紧凑和可靠的电力系统是非常需要的。在这项工作中,我们研究了一系列聚(偏二氟乙烯-三氯乙烯-共-氯三氟乙烯)-gra / i-聚苯乙烯[P(VDF-CTFE)-g-PS]接枝共聚物的局限铁电性能及其潜在的高应用能量密度和低损耗电容器膜。薄膜(约20(xm))是通过不同的加工方法制备的,即热压或固溶浇铸,然后在高温下进行机械拉伸,在结晶诱导的微相分离后,PS侧链分离到PVDF的外围晶体,形成一个限制界面层,由于该限制PS富集层在非晶-晶体界面处的低极化率,补偿极化被大大降低,从而在这些接枝共聚物中产生了新颖的限制铁电行为。我们的研究表明,含有34 wt%PS的P(VDF-CTFE)-g-PS接枝共聚物的性能最佳;放电能量较高在600 MV m“ 1时密度约为10 J cm 3,在1 kHz时介电损耗(tant)低至0.006),在550 MV时磁滞回线损耗低(17.6%) rrT1。

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  • 来源
    《Advanced Functional Materials》 |2011年第16期|p.3176-3188|共13页
  • 作者单位

    Polymer Program Institute of Materials Science and Department of Chemical Materials and Biomolecular Engineering University of Connecticut Storrs, Connecticut, 06269-3136, USA;

    Department of Macromolecular and Chemical Science and Engineering Case Western Reserve University Cleveland, Ohio, 44106-7202, USA;

    Polymer Program Institute of Materials Science and Department of Chemical Materials and Biomolecular Engineering University of Connecticut Storrs, Connecticut, 06269-3136, USA;

    Department of Macromolecular and Chemical Science and Engineering Case Western Reserve University Cleveland, Ohio, 44106-7202, USA;

    Department of Material Science and Engineering Pennsylvania State University University Park, Pennsylvania 16802, USA;

    Department of Material Science and Engineering Pennsylvania State University University Park, Pennsylvania 16802, USA;

    Department of Macromolecular and Chemical Science and Engineering Case Western Reserve University Cleveland, Ohio, 44106-7202, USA;

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