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Structures, Electrical, and Dielectric Properties of PVDF-Based Nanocomposite Films Reinforced with Neat Multi-Walled Carbon Nanotube

机译:整洁的多壁碳纳米管增强的PVDF基纳米复合薄膜的结构,电学和介电性能

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We report, herein, on the structures, melting/crystallization, electrical, and dielectric properties of poly (vinylidene fluoride) (PVDF) nanocomposites reinforced with a neat multiwalled carbon nanotube (MWCNT). For our purposes, PVDF/MWCNT nanocomposite films with a wide range of MWCNT contents (0.0-20.0 wt%) are prepared via ultrasonicated solution-mixing and melt-compression methods. It is found that MWCNTs become well dispersed in nanocomposites by wrapping them with PVDF chains. The relative content of β-phase to α-phase crystals of a PVDF matrix is higher for the nanocomposite films with higher MWCNT content; although, the overall crystallinity of the nanocomposites is almost identical, irrespective of the MWCNT content. The electrical conductivity and dielectric permittivity of the nanocomposites as a function of frequency are strongly dependent on the MWCNT content. The electrical percolation threshold of PVDF/MWCNT nanocomposites is formed between 2.0 and 5.0 wt% MWCNT. The neat PVDF and nanocomposites with low MWCNT contents of 0.2 and 1.0 wt% are electrically insulating materials (~10~(-9) S/cm at 10~2 Hz) with low dielectric permittivity of 9-28; while the nanocomposites with high MWCNT contents of 5.0-20.0 wt% have relatively high electrical conductivity values (10~(-4)~10~(-2) S/cm at 10~2 Hz). In contrast, the nanocomposite with 2.0 wt% MWCNT has a huge dielectric permittivity of-6520 at 10~2 Hz, although it has relatively low electrical conductivity of ~ 10~(-8) S/cm at 10~2 Hz. The huge dielectric permittivity of the nanocomposite with 2.0 wt% MWCNT could be caused by charge accumulation at the interfacial layers between PVDF chains and MWCNTs in the vicinity of the electrical percolation threshold.
机译:我们在这里报告了用纯净的多壁碳纳米管(MWCNT)增强的聚偏二氟乙烯(PVDF)纳米复合材料的结构,熔融/结晶,电学和介电性能。为了我们的目的,通过超声溶液混合和熔融压缩方法制备了具有宽范围的MWCNT含量(0.0-20.0 wt%)的PVDF / MWCNT纳米复合膜。发现通过用PVDF链包裹它们,MWCNT变得很好地分散在纳米复合物中。 MWCNT含量较高的纳米复合薄膜中,PVDF基体中β相与α相晶体的相对含量较高。然而,不管MWCNT含量如何,纳米复合材料的总体结晶度几乎相同。纳米复合材料的电导率和介电常数是频率的函数,在很大程度上取决于MWCNT的含量。 PVDF / MWCNT纳米复合材料的电渗透阈值在MWCNT的2.0至5.0 wt%之间形成。 MWCNT含量低至0.2和1.0 wt%的纯净PVDF和纳米复合材料是电绝缘材料(介电常数为9-28的电绝缘材料(在10〜2 Hz时约为10〜(-9)S / cm); MWCNT含量为5.0-20.0 wt%的纳米复合材料具有较高的电导率值(在10〜2 Hz下为10〜(-4)〜10〜(-2)S / cm)。相反,具有2.0wt%的MWCNT的纳米复合材料在10〜2Hz下具有-6520的巨大介电常数,尽管在10〜2Hz下具有约10〜(-8)S / cm的相对低的电导率。 MWCNT为2.0 wt%的纳米复合材料的巨大介电常数可能是由电渗漏阈值附近的PVDF链和MWCNT之间的界面层上的电荷积累引起的。

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