Mechanical characterization of single high-strength electrospun polyimide nanofibres

被引:63
作者
Chen, Fei [1 ]
Peng, Xinwen [1 ]
Li, Tingting [1 ]
Chen, Shuiliang [1 ]
Wu, Xiang-Fa [2 ]
Reneker, Darrell H. [3 ]
hou, Haoqing [1 ]
机构
[1] Jiangxi Normal Univ, Chem & Chem Engn Coll, Nanchang 330022, Peoples R China
[2] Univ Nebraska, Dept Engn Mech, Lincoln, NE 68588 USA
[3] Univ Akron, Inst Polymer Sci, Akron, OH 44325 USA
关键词
D O I
10.1088/0022-3727/41/2/025308
中图分类号
O59 [应用物理学];
学科分类号
摘要
Ultimate tensile strength and axial tensile modulus of single high-strength electrospun polyimide [poly(p-phenylene biphenyltetracarboximide), BPDA/PPA] nanofibres have been characterized by introducing a novel micro tensile testing method. The polyimide nanofibres with diameters of around 300 nm were produced by annealing their precursor (polyamic acid) nanofibres that were fabricated by the electrospinning technique. Experimental results of the micro tension tests show that polyimide nanofibres had an average ultimate tensile strength of 1.7 +/- 0.12 GPa, axial tensile modulus of 76 +/- 12 GPa and ultimate strain of similar to 3%. The ultimate tensile strength and axial tensile modulus of the electrospun polyimide nanofibres in this study are among the highest ones reported in the literature to date. The precursor nanofibres with similar diameters and molecular weights had an average ultimate tensile strength of 766 +/- 41 MPa, axial tensile modulus of 13 +/- 0.4 GPa and ultimate strain of similar to 43%. The experimental stress-strain curves obtained in this study indicate that under axial tension, the precursor (polyamic acid) nanofibres behave as linearly strain-hardening ductile material without obvious softening at final failure, while the polyimide nanofibres behave simply as brittle material with very high tensile strength and axial tensile modulus. Furthermore, by using a transmission electron microscope, detailed fractographical analysis was performed to examine the tensile failure mechanisms of the polyimide nanofibres, which include chain scission, pull-out, chain bundle breakage, etc. X-ray diffraction analysis of the highly aligned polyimide nanofibres shows the high chain alignment along the nanofibre axis that was formed in the electrospinning process and responsible for the high tensile strength and axial tensile stiffness.
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页数:8
相关论文
共 63 条
[1]   Tunable, superhydrophobically stable polymeric surfaces by electrospinning [J].
Acatay, K ;
Simsek, E ;
Ow-Yang, C ;
Menceloglu, YZ .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2004, 43 (39) :5210-5213
[2]   Hydrophobic and superhydrophobic surfaces from polyphosphazenes [J].
Allcock, HR ;
Steely, LB ;
Singh, A .
POLYMER INTERNATIONAL, 2006, 55 (06) :621-625
[3]   Regeneration of Bombyx mori silk by electrospinning.: Part 3:: characterization of electrospun nonwoven mat [J].
Ayutsede, J ;
Gandhi, M ;
Sukigara, S ;
Micklus, M ;
Chen, HE ;
Ko, F .
POLYMER, 2005, 46 (05) :1625-1634
[4]   Influence of van der Waals forces on increasing the strength and toughness in dynamic fracture of nanofibre networks: a peridynamic approach [J].
Bobaru, F. .
MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2007, 15 (05) :397-417
[5]  
Bognitzki M, 2000, ADV MATER, V12, P637, DOI 10.1002/(SICI)1521-4095(200005)12:9<637::AID-ADMA637>3.0.CO
[6]  
2-W
[7]  
BURGER C, 2000, ANN REV MATER RES, V36, P333
[8]   An effective medium model for the elastic moduli of fiber networks and nanocomposites [J].
Chatterjee, Avik P. ;
Prokhorova, Darya A. .
JOURNAL OF APPLIED PHYSICS, 2007, 101 (10)
[9]   A model for the elastic moduli of three-dimensional fiber networks and nanocomposites [J].
Chatterjee, Avik P. .
JOURNAL OF APPLIED PHYSICS, 2006, 100 (05)
[10]   The role of electrospinning in the emerging field of nanomedicine [J].
Chew, S. Y. ;
Wen, Y. ;
Dzenis, Y. ;
Leong, K. W. .
CURRENT PHARMACEUTICAL DESIGN, 2006, 12 (36) :4751-4770