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首页> 外文期刊>Journal of Applied Polymer Science >High-Strength and High-Toughness Polyimide Nanofibers: Synthesis and Characterization
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High-Strength and High-Toughness Polyimide Nanofibers: Synthesis and Characterization

机译:高强度高韧性聚酰亚胺纳米纤维的合成与表征

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High-strength and high-toughness nanofibers were made from polyimide 6F-PI through electrospinning. The 6F-PI had a backbone made up with 3,3',4, 4'-biphenyl-tetracarboxylic dianhydride and 2,2-bis[4-(4-aminophenoxy)phenyl]-hexafluoro-propane residues. Electrospun 6F-PI precursor nanofibers were collected in the form of aligned fiber sheet on the rim of a rotating disc. Heating process converted the precursor fiber sheets to 6F-PI nanofiber sheets. Gel permeation chromatography and Ostwald Viscometer were used to determine the molecular weight and the molecular weight distribution of the 6F-PI precursor, i.e., the 6F-polyamic acid. Scanning electron microscopy, infrared spectroscopy, X-ray scattering, tensile testing, dynamic mechanical analysis, thermogravimetric analysis, and differential scanning calorimetry were employed to characterize the surface morphology, thermal stability, and mechanical properties of the 6F-PI nanofiber sheets. Experimental results show that the nanofibers were well aligned in the sheets with fiber diameters ranging from 50 to 300 nm. The nanofiber sheets were stable to over 450 degrees C, with a glass transition at 265.2 degrees C. The uniaxial tension test showed that the 6F-PI nanofiber sheets had superior mechanical properties. The ultimate tensile strength, modulus, toughness, and elongation to break of the 6F-PI nanofiber sheets are respectively, 308 +/- 14 MPa, 2.08 +/- 0.25 GPa, 365 +/- 20 MPa, and 202 +/- 7%. It is expected that electrospun PI nanofibers with such high tougluless and high ultimate tensile strength can find applications in high-performance textiles and composites, for example.
机译:高强度高韧性纳米纤维是由聚酰亚胺6F-PI通过静电纺丝制成的。 6F-PI具有由3,3',4,4'-联苯基-四羧酸二酐和2,2-双[4-(4-氨基苯氧基)苯基]-六氟丙烷残基组成的主链。静电纺丝的6F-PI前体纳米纤维以对齐的纤维片的形式收集在旋转圆盘的边缘上。加热过程将前体纤维片转变为6F-PI纳米纤维片。凝胶渗透色谱法和奥斯瓦尔德粘度计用于确定6F-PI前体即6F-聚酰胺酸的分子量和分子量分布。使用扫描电子显微镜,红外光谱,X射线散射,拉伸测试,动态力学分析,热重分析和差示扫描量热法来表征6F-PI纳米纤维片的表面形态,热稳定性和机械性能。实验结果表明,纳米纤维在片材中排列良好,纤维直径范围为50至300 nm。纳米纤维片材稳定至超过450摄氏度,玻璃化转变温度为265.2摄氏度。单轴拉伸试验表明6F-PI纳米纤维片材具有优异的机械性能。 6F-PI纳米纤维片材的极限拉伸强度,模量,韧性和断裂伸长率分别为308 +/- 14 MPa,2.08 +/- 0.25 GPa,365 +/- 20 MPa和202 +/- 7 %。期望具有如此高的无毛刺性和高的极限拉伸强度的电纺PI纳米纤维可以在例如高性能纺织品和复合材料中找到应用。

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