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Preparation and properties of novel PIPD fibers 被引量:7

Preparation and properties of novel PIPD fibers
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摘要 Poly[2, 6-diimidazo (4,5-b:4’,5’-e) pyridinylene-1,4(2,5-dihydroxy) phenylen] (PIPD) was synthesized and the obtained PIPD/ PPA dope was directly spun into fibers via a dry-jet wet-spinning process for the first time. The obtained polymers were mainly characterized by ATR-FTIR and dynamic contact angle analysis. FTIR spectrum of the PIPD fibers indicates that the product was consistent with the target product. The contact angle measurements show that the wetting process of water on PIPD fibers is apparently faster than that on PBO fibers. The axial compression bending test indicates that PIPD fibers showed larger compressive strength compared with that of PBO fibers under the same axial compressive load. Meanwhile, the TGA test results indicate that the PIPD fibers have excellent thermal stability. Poly[2, 6-diimidazo (4,5-b:4',5'-e) pyridinylene-1,4(2,5-dihydroxy) phenylen] (PIPD) was synthesized and the obtained PIPD/ PPA dope was directly spun into fibers via a dry-jet wet-spinning process for the first time. The obtained polymers were mainly characterized by ATR-FTIR and dynamic contact angle analysis. FTIR spectrum of the PIPD fibers indicates that the product was consistent with the target product. The contact angle measurements show that the wetting process of water on PIPD fibers is ap- parently faster than that on PBO fibers. The axial compression bending test indicates that PIPD fibers showed larger compressive strength compared with that of PBO fibers under the same axial compressive load. Meanwhile, the TGA test results indicate that the PIPD fibers have excellent thermal stability.
出处 《Chinese Science Bulletin》 SCIE EI CAS 2010年第36期4203-4207,共5页
基金 supported by National Natural Science Foundation of China (50673017) Program for Outstanding Academic Leaders of Shanghai and Program of Introducing Talents of Discipline to Universities (111-2-04)
关键词 PIPD 纤维性能 PBO纤维 制备 目标产品 轴向压缩 动态接触角 接触角测量 PIPD polymer, novel fiber, surface property, axial compressive properties, thermal stability
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