Liu Benben, Wang Huiling, Guo Xiaoyan, Yang Rongjie, Li Xiangmei
School of Materials Science, Beijing Institute of Technology, 5 Zhongguancun South Street, Haidian District, Beijing 100081, China.
Polymers (Basel). 2019 May 1;11(5):770. doi: 10.3390/polym11050770.
A novel organic-inorganic hybrid containing allyl benzoxazine and polyhedral oligomeric silsesquioxane (POSS) was synthesized by the thiol-ene (click) reaction. The benzoxazine (BOZ)-containing POSS (SPOSS-BOZ) copolymerized with benzoxazine/epoxy resin was used to prepare composites of SPOSS-PBZ-E nanocomposites(NPs). The polymerization behavior was monitored by FTIR and non-isothermal differential scanning calorimetry (DSC), which showed that the composites had completely cured with multiple polymerization mechanisms according to the oxazine ring-opening and epoxy resin (EP) polymerization. The thermal properties of the organic-inorganic polybenzoxazine (PBZ) nanocomposites were analyzed by DSC and thermogravimetric analysis (TGA). Furthermore, the X-ray diffraction analysis and the scanning electron microscopy (SEM) micrographs of the SPOSS-PBZ-E nanocomposites indicated that SPOSS was chemically incorporated into the hybrid nanocomposites in the size range of 80-200 nm. The flame retardancy of the benzoxazine epoxy resin composites was investigated by limiting oxygen index (LOI), UL 94 vertical burn test, and cone calorimeter tests. When the amount of SPOSS reached 10% or more, the vertical burning rating of the curing system arrived at V-1, and when the SPOSS-BOZ content reached 20 wt %, the thermal stability and flame retardancy of the material were both improved. Moreover, in the cone calorimeter testing, the addition of SPOSS-BOZ hindered the decomposition of the composites and led to a reduction in the peak heat release rate (pHRR), the average heat release rate (aHRR), and the total heat release (THR) values by about 20%, 25%, and 25%, respectively. The morphologies of the chars were also studied by SEM and energy dispersive X-ray spectroscopy (EDX), and the flame-retardant mechanism of POSS was mainly a condensed-phase flame retardant. The ceramic layer was formed by the enrichment of silicon on the char surface. When there are enough POSS nanoparticles, it can effectively protect the combustion of internal polymers.
通过硫醇-烯(点击)反应合成了一种含有烯丙基苯并恶嗪和多面体低聚倍半硅氧烷(POSS)的新型有机-无机杂化材料。将含苯并恶嗪(BOZ)的POSS(SPOSS-BOZ)与苯并恶嗪/环氧树脂共聚,用于制备SPOSS-PBZ-E纳米复合材料(NPs)。通过傅里叶变换红外光谱(FTIR)和非等温差示扫描量热法(DSC)监测聚合行为,结果表明,根据恶嗪开环和环氧树脂(EP)聚合反应,复合材料通过多种聚合机制完全固化。通过DSC和热重分析(TGA)分析了有机-无机聚苯并恶嗪(PBZ)纳米复合材料的热性能。此外,SPOSS-PBZ-E纳米复合材料的X射线衍射分析和扫描电子显微镜(SEM)照片表明,SPOSS以化学方式掺入尺寸范围为80-200nm的杂化纳米复合材料中。通过极限氧指数(LOI)、UL 94垂直燃烧试验和锥形量热仪试验研究了苯并恶嗪环氧树脂复合材料的阻燃性能。当SPOSS的用量达到10%或更多时,固化体系的垂直燃烧等级达到V-1,当SPOSS-BOZ的含量达到20wt%时,材料的热稳定性和阻燃性均得到提高。此外,在锥形量热仪测试中,添加SPOSS-BOZ阻碍了复合材料的分解,使峰值热释放速率(pHRR)、平均热释放速率(aHRR)和总热释放(THR)值分别降低了约20%、25%和25%。还通过SEM和能量色散X射线光谱(EDX)研究了炭的形态,POSS的阻燃机理主要是凝聚相阻燃。通过炭表面硅的富集形成了陶瓷层。当有足够的POSS纳米颗粒时,它可以有效地保护内部聚合物的燃烧。