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多孔聚偏氟乙烯/多壁碳纳米管纳米复合材料的制备及其增强的热电性能

Fabrication of Porous Polyvinylidene Fluoride/Multi-Walled Carbon Nanotube Nanocomposites and Their Enhanced Thermoelectric Performance.

作者信息

Du Fei-Peng, Qiao Xuan, Wu Yan-Guang, Fu Ping, Liu Sheng-Peng, Zhang Yun-Fei, Wang Qiu-Yu

机构信息

School of Materials Science and Engineering, Key Laboratory of Green Chemical Process of Ministry of Education, Wuhan Institute of Technology, Wuhan 430205, China.

出版信息

Polymers (Basel). 2018 Jul 19;10(7):797. doi: 10.3390/polym10070797.

Abstract

In this paper, a solvent vapor-induced phase separation (SVIPS) technique was used to create a porous structure in polyvinylidene fluoride/Multi-walled carbon nanotube (PVDF/MWNTs) composites with the aim of increasing the electrical conductivity through the incorporation of MWNTs while retaining a low thermal conductivity. By using the dimethylformamide/acetone mixture, porous networks could be generated in the PVDF/MWNTs composites upon the rapid volatilization of acetone. The electrical conductivity was gradually enhanced by the addition of MWNTs. At the same time, the thermal conductivity of the PVDF film could be retained at 0.1546 W·m·K due to the porous structure being even by loaded with a high content of MWNTs (i.e., 15 wt.%). Thus, the Seebeck coefficient, power factor and figure of merit () were subsequently improved with maximum values of 324.45 μV/K, 1.679 μW·m·K, and 3.3 × 10, respectively. The microstructures, thermal properties, and thermoelectric properties of the porous PVDF/MWNTs composites were studied. It was found that the enhancement of thermoelectric properties would be attributed to the oxidation of MWNTs and the porous structure of the composites. The decrease of thermal conductivity and the increase of Seebeck coefficient were induced by the phonon scattering and energy-filtering effect. The proposed method was found to be facile and effective in creating a positive effect on the thermoelectric properties of composites.

摘要

在本文中,采用溶剂蒸汽诱导相分离(SVIPS)技术在聚偏氟乙烯/多壁碳纳米管(PVDF/MWNTs)复合材料中构建多孔结构,目的是通过引入MWNTs提高电导率,同时保持低热导率。通过使用二甲基甲酰胺/丙酮混合物,丙酮快速挥发时可在PVDF/MWNTs复合材料中生成多孔网络。通过添加MWNTs,电导率逐渐提高。同时,由于即使负载高含量的MWNTs(即15 wt.%),多孔结构依然均匀,PVDF薄膜的热导率可保持在0.1546 W·m·K。因此,塞贝克系数、功率因数和优值随后得到改善,最大值分别为324.45 μV/K、1.679 μW·m·K和3.3×10。研究了多孔PVDF/MWNTs复合材料的微观结构、热性能和热电性能。发现热电性能的增强归因于MWNTs的氧化和复合材料的多孔结构。声子散射和能量过滤效应导致热导率降低和塞贝克系数增加。结果表明,所提出的方法在对复合材料的热电性能产生积极影响方面简便有效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2bef/6403918/a2cac26e4e46/polymers-10-00797-g001.jpg

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