High performance aromatic polyimide fibers, 3. A polyimide synthesized from 3,3′,4,4′‐biphenyltetracarboxylic dianhydride and 2,2′‐dimethyl‐4,4′‐diaminobiphenyl
- 1 June 1994
- journal article
- research article
- Published by Wiley in Macromolecular Chemistry and Physics
- Vol. 195 (6), 2207-2225
- https://doi.org/10.1002/macp.1994.021950627
Abstract
A new high molecular weight aromatic polyimide has been synthesized from 3,3′,4,4′‐biphenyltetracarboxylic dianhydride (BPDA) and 2,2′‐dimethyl‐4,4′‐diaminobiphenyl (DMB) in p‐chlorophenol at elevated temperature. BPDA‐DMB fibers have been spun by a dry‐jet wet spinning method. The fibers were elongated and annealed at elevated temperatures above 400°C to achieve excellent mechanical properties. In seven times drawn fibers, the BPDA‐DMB molecule packs into a triclinic unit cell with dimensions of a = 2,10(2) nm, b = 1,523(8) nm, c = 4,12(7) nm, α = 61,2(6)°, β = 50,7(7)°, and γ = 78,9(6)° with the number of chain repeating units per unit cell (Z) is sixteen. After annealing at elevated temperatures, the fibers produce a small modification of the unit cell [a = 2,048(6) nm, b = 1,529(5) nm, c = 4,00(2) nm, α = 62,1(3)°, β = 52,2(3)° and γ = 79,6(3)°]. By increasing the draw ratio, both the crystallinity and crystal orientation increase. The BPDA‐DMB fibers possess a decomposition temperature of 530°C in nitrogen and 500°C in air at a 5% weight loss when the heating rate is 10°C/min. After extensive drawing, BPDA‐DMB fibers exhibit a tensile strength of 3,3 GPa and a tensile modulus of over 130 GPa. Dynamic mechanical behavior of the fibers show both α (glass transition) and β (sub‐glass transition) relaxations above room temperature. The nature of the sub‐glass transition behavior is described as a noncooperative motion attributed to the diamine portion of the molecule. The activation energy for this relaxation in as‐spun fibers is 109 kJ/mol and increases to 144 kJ/mol by increasing the draw ratio. This β relaxation is found to be crystallinity dependent. The α transition is also suppressed by crystallinity which increases with draw ratio.This publication has 15 references indexed in Scilit:
- High-performance aromatic polyimide fibres: 2. Thermal mechanical and dynamic propertiesPolymer, 1993
- The origin of β relaxations in segmented rigid‐rod polyimide and copolyimide filmsPolymer Engineering & Science, 1993
- Organo-soluble segmented rigid-rod polyimide films. Part 3.—Effects of copolymer composition on thermal expansivity and on relaxation processesJournal of Materials Chemistry, 1993
- Molecular weight and concentration effects on gel/sol transitions in a segmented rigid‐rod polyimide solutionPolymer International, 1993
- Organo-soluble, segmented rigid-rod polyimide films: 2. Properties for microelectronic applicationsPolymer, 1992
- Thermomechanical analysis of a segmented rigid-rod polyimide filmThermochimica Acta, 1992
- A high-performance aromatic polyimide fibre: 1. Structure, properties and mechanical-history dependencePolymer, 1991
- Changes in crystal structure parameters and thermal mechanical properties of poly(p‐phenylene terephthalamide) fibers under different annealing conditionsJournal of Polymer Science Part B: Polymer Physics, 1990
- Fundamental relationship between the nonequilibrium glassy state and yield stress of amorphous polymersJournal of Polymer Science Part B: Polymer Physics, 1987
- Statistical entropy model for relaxation in stressed polymer glassesPolymer Engineering & Science, 1984