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Polyetherimide/Dicyanate Semi-interpenetrating Polymer Networks Having a Morphology Spectrum  

Kim, Yu-Seung (Department of Chemistry, Virginia Tech.)
Min, Hyun-Sung (LG Chemical Ltd. Research Park)
Kim, Sung-Chun (Center for Advanced Functional Polymers, Korea Advanced Institute of Science and Technology)
Publication Information
Macromolecular Research / v.10, no.2, 2002 , pp. 60-66 More about this Journal
Abstract
The morphology, dynamic mechanical behavior and fracture behavior of polyetherimide (PEI)/dicyanate semi-interpenetrating polymer networks (semi-IPNs) with a morphology spectrum were analyzed. To obtain the morphology spectrum, we disported PEI particles in the procured dicyanate resin containing 300 ppm of zinc stearate catalyst. The semi-IPNs exhibited a morphology spectrum, which consisted of nodular spinodal structure, dual-phase morphology, and sea-island type morphology, in the radial direction of each dispersed PEI particle due to the concentration gradient developed by restricted dissolution and diffusion of the PEI particles during the curing process of the dicyanate resin. Analysis of the dynamic mechanical data obtained by the semi-IPNs demonstrated that the transition of the PEI-rich phase was shifted toward higher temperature as well as becoming broader because of the gradient structure. The semi-IPNs with the morphology spectrum showed improved fracture energy of 0.3 kJ/$m^2$, which was 1.4 times that of the IPNS having sea-island type morphology. It was found that the partially introduced nodular structure played a crucial role in the enhancement of the fracture resistance of the semi-IPNs.
Keywords
dicyanate; toughening; morphology; semi-IPNs; gradient;
Citations & Related Records

Times Cited By Web Of Science : 5  (Related Records In Web of Science)
Times Cited By SCOPUS : 4
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