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首页> 外文期刊>Iranian polymer journal >A study on high-performance poly(azo-pyridine-benzophenone-imide) nanocomposites via self-reinforcement of electrospun nanofibers
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A study on high-performance poly(azo-pyridine-benzophenone-imide) nanocomposites via self-reinforcement of electrospun nanofibers

机译:通过电纺纳米纤维的自增强作用制备高性能聚(偶氮-吡啶-二苯甲酮-酰亚胺)纳米复合材料

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In this study, initially high molecular weight poly(azo-pyridine-benzophenone-imide) (PAPBI) has been fabricated using facile approach. Uniformly aligned electrospun PAPBI and PAPBI/multi-walled carbon nanotube (MWCNT) nanofibers were then produced via electros-pinning of desired solutions. Self-reinforcement technique was used to fabricate PAPBI-based nanofiber reinforced films. Uniform dispersion, orientation and adhesion between carbon nanotubes and polymer improved the physical properties of resulting nanocomposites. Fourier transform infrared spectroscopy was used to identify the structures of polymer and self-reinforced nanocomposite films. Scanning and transmission electron microscopy showed that the electrospun PAPBI/MWCNT nanofibers were uniformly aligned and free of defects. Moreover, polyimide matrix was evenly coated on the surface of electrospun nanofibers, thus, preventing the fibers from bundling together. Samples of 1-3 wt% of as-prepared electrospun nanofibers were self-reinforced to enhance the tensile strength of the films. Films of 3 wt% PAPBI/ MWCNT nanofiber-based nanocomposite showed higher value in tensile strength (417 MPa) relative to 3 wt% PAPBI nanofibers (361 MPa) reinforced film. Tensile modulus of the PAPBI/MWCNT system was also significantly improved (19.9-22.1 GPa) compared with PAPBI system (13.9-16.2 GPa). Thermal stability of PAPBI/ MWCNT nanofibers reinforced polyimide was also superior having 10 % gravimetric loss at 600-634 ℃ and glass transition temperature 272-292 ℃ relative to the neat polymer (T_(10) 545 ℃, T_g 262 ℃) and PAPBI nanofiber-based system (T_(10) 559-578 ℃, T_g 264-269 ℃). New high-performance self-reinforced polyimide nanocomposites may act as potential contenders for light-weight aerospace materials.
机译:在这项研究中,最初已经使用简便的方法制备了高分子量的聚(偶氮-吡啶-二苯甲酮-酰亚胺)(PAPBI)。然后,通过对所需溶液进行电钉扎来生产均匀排列的静电纺丝PAPBI和PAPBI /多壁碳纳米管(MWCNT)纳米纤维。自增强技术用于制造基于PAPBI的纳米纤维增强膜。碳纳米管和聚合物之间的均匀分散,取向和附着力改善了所得纳米复合材料的物理性能。傅里叶变换红外光谱用于鉴定聚合物和自增强纳米复合薄膜的结构。扫描和透射电子显微镜显示,电纺PAPBI / MWCNT纳米纤维排列均匀且无缺陷。而且,聚酰亚胺基体均匀地涂覆在电纺纳米纤维的表面上,因此防止了纤维束在一起。 1-3 wt%的制备的电纺纳米纤维样品可自我增强,以增强薄膜的拉伸强度。相对于3 wt%的PAPBI纳米纤维(361 MPa)增强膜,3 wt%的PAPBI / MWCNT纳米纤维基纳米复合材料膜的拉伸强度(417 MPa)值更高。与PAPBI系统(13.9-16.2 GPa)相比,PAPBI / MWCNT系统的拉伸模量也显着提高(19.9-22.1 GPa)。相对于纯聚合物(T_(10)545℃,T_g 262℃)和PAPBI纳米纤维,PAPBI / MWCNT纳米纤维增强的聚酰亚胺的热稳定性也优异,在600-634℃和玻璃化温度272-292℃时失重10%。系统(T_(10)559-578℃,T_g 264-269℃)。新型高性能的自增强聚酰亚胺纳米复合材料可作为轻质航空航天材料的潜在竞争者。

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