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Optimizing nanostructures to achieve enhanced breakdown strength and improved energy storage performances in dipolar polymers

机译:优化纳米结构,以增强偶极聚合物的击穿强度和储能性能

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Polymer dielectrics have attracted ever-increasing attention for electrical energy storage applications in recent years. Typically, polymer-based nanocomposite films are adopted to obtain polymer dielectrics with high energy density but sometime suffer from the inhomogeneous distribution of fillers. In this work, enhanced breakdown strength, suppressed dielectric loss and improved energy storage performances of PVDF film are concurrently achieved via the regulation of the sub-nano free volume, without introduction of any kinds of fillers and also minimizing the uneven distribution of the local electric field. The most improved breakdown strength is up to 488 MV m−1, with an enhancement of 60 compared with that of pristine PVDF, which enables the irradiated PVDF film to exhibit an improved polarization strength and charged energy density, giving rise to a maximum polarization strength of 3.55 μC cm−2 and a charged energy density of 9.75 J cm−3. More importantly, the irradiated PVDF film exhibits a superior discharged energy density of 7.91 J cm−3 which is 261 that of the pristine PVDF film, while maintaining the charge–discharge efficiency above 80. In addition, the alteration of experimental breakdown strength with the increase of irradiation dose is found to be inversely correlated with the size variation of free volume holes, and the theoretical simulation of local electric field distribution further proves that the breakdown strength enhancement originates from the size shrinkage of free volume holes. The adjustment of free volume provides a potentially effective way to regulate the dielectric properties and energy storage performances of dipolar polymers.
机译:聚合物电介质吸引了越来越多关注电能存储近年来应用。采用聚合物基纳米复合材料薄膜获得高的聚合物电介质的能量但有时遭受密度不均匀分布的填充物。工作,增强的击穿强度,抑制介电损耗和提高能源存储表演的同时PVDF膜实现通过sub-nano自由的规定体积,而不引入任何类型的填充物,也减少不均匀当地电场的分布。大多数改进击穿强度488 MVm−1,相比提高了60%使原始的PVDF辐照PVDF膜表现出一种改进的极化强度和能量密度,引起的最大极化强度3.55μC厘米−2和一个带电的能量密度为9.75J厘米−3。电影表现出优良的放电能量密度7.91 J厘米−3的261%原始的PVDF膜,同时维护充放电效率在80%以上。此外,实验的变更击穿强度的增加辐照剂量是反向与自由体积的大小变化洞,和当地的理论模拟电场分布进一步证明击穿强度增强的发源地自由体积尺寸收缩的洞。调整自由体积提供了可能有效的方法来调节介质属性和储能性能偶极聚合物。

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