静电纺丝法制备高性能聚酰亚胺纳米纤维膜及其性能

J. Zha, F. Sun, Z. Dang
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引用次数: 3

摘要

聚酰亚胺(PIs)是一类具有代表性的高性能工程塑料,含有环亚胺和芳香族基团。芳香族聚酰亚胺因其优异的热稳定性、机械性能以及良好的耐化学性和介电性能而受到广泛的研究。碳纳米管具有低密度、高长径比、高刚度和极高强度等优点,被认为是理想的纳米补强填料,在电极、纳米电子器件、复合材料等领域得到了广泛的应用。随着静电纺丝技术的发展,含碳纳米管的PI纳米复合材料受到越来越多的关注。然而,通过静电纺丝对PI/CNTs纳米复合材料的导电机理和力学性能进行了研究。为了提高MWNTs与基体的界面相互作用和相容性,本文首先对原始MWNTs进行浓硝酸处理,得到酸官能化MWNTs,然后通过原位聚合制备静电纺丝溶液。最后,采用静电纺丝法制备了PI纳米纤维和纳米碳纳米管复合材料。形成平行纤维等可控结构。研究了纳米纳米管在静电纺丝纳米纤维中的分散和排列形态,以及纳米纤维复合材料的热性能和力学性能。研究了纳米纤维复合材料的结构与电性能之间的关系。综上所述,这种均匀性制备高性能PI/CNTs纳米纤维薄膜的方法是在实际应用中利用CNTs在聚合物基体中获得优异的热、电、力学性能的良好尝试。
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Fabrication and properties of high performance polyimide nanofibrous films by electrospinning
Polyimides (PIs) are a class of representative high-performance engineering plastics possessing the cyclic imide and aromatic groups. Aromatic polyimides have been extensively investigated due to their excellent thermal stability, mechanical properties, along with their good chemical resistance and dielectric properties. Carbon nanotubes (CNTs) have been widely used in many fields such as electrodes, nanometer electron device, and composites etc, as CNTs are considered as the ideal reinforcing nanofillers owing to low density, high aspect ratio, high stiffness, and extremely high strength. With the development of the electrospinning technology, PI nanocomposites containing CNTs have received more significant attention. However, only a few studies have described the conductive mechanism and mechanical properties of PI/CNTs nanocomposites by electrospinning. In this paper, in order to improve the interfacial interaction and compatibility between the MWNTs and the matrix, pristine MWNTs were firstly treated with concentrated HNO3 to obtain the acid-functionalized MWNTs, and then the electrospinning solutions are prepared via in-situ polymerization. At last, PI nanofibers and the nanofiber composites with MWNTs were fabricated by electrospinning. The controllable structure such as parallel fiber is formed. The dispersion and alignment morphologies of MWNTs in the electrospun nanofibers, as well as the thermal and mechanical properties of the nanofiber composites, were studied in detail. The relationship between structure and electrical properties of the nanofiber composites are also studied. To sum up, such a homogeneity approach to fabricate high-performance PI/CNTs nanofiber films is a good attempt toward utilizing CNTs in polymer matrices to achieve excellent thermal, electrical, and mechanical properties in practical use.
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