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填充有4,4'-二羟基二苯醚功能化石墨烯的聚偏氟乙烯纳米复合材料中增强的介电常数和抑制的电导率。

Enhanced dielectric permittivity and suppressed electrical conductivity in polyvinylidene fluoride nanocomposites filled with 4,4'-oxydiphenol-functionalized graphene.

作者信息

Li Ming, Liu Jinzhang, Zheng Dezhi, Zheng Mingsheng, Zhao Yi, Hu Mingjun, Yue G H, Shan Guangcun

机构信息

School of Materials Science and Engineering, Beihang University, Beijing 100083, People's Republic of China.

出版信息

Nanotechnology. 2019 Jun 28;30(26):265705. doi: 10.1088/1361-6528/ab0a50. Epub 2019 Feb 25.

Abstract

Plastic film capacitors suffer from low charge storage capacity due to the low dielectric constant of the polymer (<10). We have devised a polyvinylidene fluoride (PVDF) composite film filled with small graphene oxide (GO) sheets that have aromatic molecules attached to their surfaces. The use of 4,4'-oxydiphenol molecules to functionalize graphene sheets is found to have a remarkable effect on enhancing the dielectric permittivity as well as reducing the electrical conductivity of the nanocomposite. When under an electric field, these molecules with an angled molecular geometry act as aligned electric dipoles to largely enhance the dielectric permittivity of the composite, reaching a level two orders of magnitude higher than that of the counterpart filled with blank graphene sheets. Also, the aromatic molecules on the graphene surface act as resistive barriers that block charge transfer between interconnected graphene sheets. As a consequence, the electric conductivity of the composite can be decreased by two orders of magnitude. The PVDF composite filled with functionalized graphene shows a percolation threshold of 13 wt% and a high dielectric constant of 1091 at 100 Hz at this point.

摘要

由于聚合物的低介电常数(<10),塑料薄膜电容器的电荷存储容量较低。我们设计了一种填充有小氧化石墨烯(GO)片的聚偏二氟乙烯(PVDF)复合薄膜,这些GO片的表面附着有芳香分子。发现使用4,4'-二羟基二苯醚分子对石墨烯片进行功能化对提高纳米复合材料的介电常数以及降低其电导率具有显著效果。在电场作用下,这些具有成角分子几何形状的分子充当排列的电偶极,极大地提高了复合材料的介电常数,达到比填充空白石墨烯片的对应物高两个数量级的水平。此外,石墨烯表面的芳香分子充当电阻屏障,阻止相互连接的石墨烯片之间的电荷转移。因此,复合材料的电导率可降低两个数量级。填充有功能化石墨烯的PVDF复合材料在此处显示出13 wt%的渗流阈值和在100 Hz时1091的高介电常数。

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