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Carbon-based polymer nanocomposites as dielectric energy storage materials

机译:碳基聚合物纳米复合材料作为介电能量储存材料

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Nanostructured polymeric materials based on conductive nanofillers have promising applications in the energy storage field owing to the extraordinary characteristics of the nanofillers. Conductive nanofillers, such as graphene nanoplatelets, are characterized by small size, extraordinary surface area to volume ratio, high aspect-ratio and extremely low electrical resistivity. In this work, the dielectric behaviors and the corresponding energy storage capabilities of high aspect-ratio carbon nanofiller/polymer composites were reviewed. At the electrical percolation point, a conductive composite exhibits a sudden and remarkable enhancement in dielectric constant and dielectric loss. The challenge is to maintain the increase in dielectric constant while preventing the increase in dielectric loss. Various physical and chemical methodologies have been followed to overcome this challenge including surface chemistry modifications, physical alignment of nanofillers and utilizing of hybrid mixtures. Promising results were reported to minimize the energy loss due to the conductive network formation. Nanocomposites with a dielectric constant of 103 and dielectric loss of only 0.08 were successfully fabricated. However, more work is still needed for a further enhancement in dielectric constant and reduction in the energy loss and to improve the storage capabilities of the nanocomposites.
机译:基于导电纳米填充物的纳米结构聚合物材料在纳米填充物的非凡特性时,在能量存储场中具有很有希望的应用。导电纳米氧化物(例如石墨烯纳米孔)的特征在于体积比,高纵横比和极低电阻率的特征。在这项工作中,综述了高纵横比碳纳米填料/聚合物复合材料的介电行为和相应的能量存储能力。在电渗透点处,导电复合材料在介电常数和介电损耗中呈现出突然和显着的增强。挑战是保持介电常数的增加,同时防止介电损耗的增加。已经进行了各种物理和化学方法,以克服这种挑战,包括表面化学修饰,纳米填充物的物理对准以及利用杂种混合物。据报道,有希望的结果,以最大限度地减少由于导电网络形成引起的能量损失。介电常数为103和介电损耗仅为0.08的纳米复合材料被成功制造。然而,仍然需要更多的工作来进一步增强介电常数和减少能量损失,并改善纳米复合材料的储存能力。

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