Dielectric and energy storage properties of ferroelectric polymers by blending polar rubber at elevated temperature
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摘要
Purpose/Aim
In recent years, flexible polymer-based film capacitors with extremely high power density, excellent insulation properties, and easy processing have been used in the field of electric vehicles, smart grids, pulse power technology. However, the low energy density and pure thermal stability limit the wide applications of current commercial biaxially oriented polypropylene (BOPP) films. Therefore, ferroelectric polymers with high dielectric constant have been utilized to improve the dielectric and energy storage properties.
Experimental/Modeling methods
In the first step, the P(VDF-HFP) pellet was dissolved in 10 ml DMF solvent. Appropriate amounts of NBR fillers were then added into the above solution with different weight fractions with ultrasonication. A stable suspension was obtained after vigorous magnetic stirring for 24 h at elevated temperature of 50 °C. Next, the solution was then drop onto a smooth glass substrate, and cast into films using a blade. The casted films were dried at 40 °C in the oven for 6 h firstly, then 70 °C for 12 h. Finally, NBR/P(VDF-HFP) films with thermal treatment were obtained after quenching in ice water. The field emission scanning electron microscopy (FE-SEM, Zeiss Merlin) was applied to witness cross-sectional morphologies of all-organic NBR/P(VDF-HFP) films. The dielectric spectra of NBR/P(VDF-HFP) films were acquired through the Precision Impedance Analyzer (Agilent 4294A). The dielectric breakdown strength of composites was measured with a high voltage withstand tester. Unipolar displacement-electric field (D-E) hysteresis loops of all-organic composites were performed using the Premier II ferroelectric test system (Radiant Technologies, Inc.).
Results/discussion
The results showed that when the appropriate content of NBR is added, the NBR/P(VDF-HFP) composite film can effectively improve the dielectric and energy storage properties under high temperature conditions, which makes new progress on the basis of existing research.
Conclusions
In summary, the all-organic composites consisting of NBR fillers and P(VDF-HFP) were prepared to improve high-temperature capacitive energy storage. Film capacitors based on the blended all-organic NBR/P(VDF-HFP) dielectrics may improve the energy density and operating reliability.
 
关键词
P(VDF-HFP),dielectric properties,high-energy density,high temperature
报告人
Qikun Feng
Tsinghua University

稿件作者
Qikun Feng Tsinghua University
Yong-Xin Zhang Tsinghua University
Xin-Jie Wang Tsinghua University
Zhi-Min Dang 清华大学
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重要日期
  • 会议日期

    09月25日

    2022

    09月29日

    2022

  • 08月15日 2022

    提前注册日期

  • 09月10日 2022

    报告提交截止日期

  • 11月10日 2022

    注册截止日期

  • 11月30日 2022

    初稿截稿日期

  • 11月30日 2022

    终稿截稿日期

主办单位
IEEE DEIS
承办单位
Chongqing University
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