Startseite Synthesis and properties of novel high thermally stable polyimide-chrysotile composites as fire retardant materials
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Synthesis and properties of novel high thermally stable polyimide-chrysotile composites as fire retardant materials

  • Turgay Seckin , Ayber Yildirim und Suleyman Koytepe EMAIL logo
Veröffentlicht/Copyright: 20. September 2014
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Abstract

Novel high thermally stable polyimide-chrysotile (PI-Chr) composites were synthesized. Firstly, Chrysotile (Chr) was modified with 3-aminopropyltriethoxysilane (APS). Poly(amic acid) solution was synthesized from pyromellitic dianhydride (PMDA) and 4,4′-diaminodiphenyl ether. Then, PI-Chr composites were prepared from poly(amic acid) solution and different ratios of modified Chr. Prepared PI-Chr composites were characterized by Fourier transform infrared (FTIR) spectroscopy, X-ray spectroscopy and thermal analysis techniques. Thermal analysis results showed that the PI-Chr composites have higher decomposition temperatures in comparison with the pure PIs. A 10% weight loss belonging to PI-Chr composites was observed between 489°C and 536°C in air atmosphere, but this value was 468°C in air for pure PIs. The glass transition temperatures (Tg s) of the PI-Chr composites were 373°C–384°C, depending upon the amount of the Chr. PI-Chr composites exhibited improved thermal stability. The activation energies (Ea s) of the thermal degradation reaction were calculated using the Kissinger method for pure PI and composites. The Ea s of the PI-Chr composites were found to be 77 and ∼117 kJ/mol. The fire retardant properties of Chr in the PI matrix were also tested by the total heat release test. The introduction of Chr in the composites leads to a slight increase in fire retardant properties thermal stability.


Corresponding author: Suleyman Koytepe, Faculty of Science and Literature, Chemistry Department, Inonu University, Malatya, 44280 Turkey, e-mail:

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Received: 2013-10-7
Accepted: 2014-8-21
Published Online: 2014-9-20
Published in Print: 2014-12-1

©2014 by De Gruyter

Artikel in diesem Heft

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  4. Synthesis and properties of novel high thermally stable polyimide-chrysotile composites as fire retardant materials
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