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Preparation of SiO2/Epoxy Nanocomposite via Reverse Microemulsion In Situ Polymerization

机译:反向微乳液原位聚合制备SiO2 /环氧纳米复合材料

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摘要

Reverse water/oil (w/o) microemulsions composed of epoxy resin (EP) (the oil phase) and nonionic surfactant and ammonia aqueous solutions (the water phase) were used in the synthesis of SiO2/EP nanocomposites. The stability of reverse microemulsion was evaluated by measuring water solubilization of the microemulsion. Effects of surfactant type and content, ammonia concentration and temperature on the water solubilization were systematically investigated. Higher water solubilization capacity was obtained by nonionic surfactant TX-100 compared with other two surfactants, Span-80 and Tween-80. Ammonia concentration of 5 wt% and preparation temperature at 35C were favorable for forming a stable microemulsion and enabling the subsequent hydrolysis and condensation reaction of inorganic precursor tetraethoxysilane (TEOS). SiO2/ epoxy nanocomposites were prepared via in situ polymerization of TEOS within the nanoscale reverse microemulsion "water pool". FTIR, SEM, and universal testing machine were used to characterize the structural and mechanical properties of the composite. The results revealed that the optimal mechanical properties were obtained at 3 wt% TEOS content. Compared with neat epoxy resin, the tensile and flexural strength of the composite were 40% and 12% higher, respectively. The formation of the silica structure in the hybrid was investigated with FTIR. The SEM and optical observations showed a ductile fracture morphology and good miscibility between inorganic and organic phases.
机译:SiO2 / EP纳米复合材料的合成中使用了由环氧树脂(EP)(油相),非离子表面活性剂和氨水溶液(水相)组成的反向水/油(w / o)微乳液。反向微乳液的稳定性通过测量微乳液的水溶性来评估。系统研究了表面活性剂类型和含量,氨浓度和温度对水溶解度的影响。与其他两种表面活性剂Span-80和Tween-80相比,非离子表面活性剂TX-100具有更高的水溶解能力。 5wt%的氨浓度和35℃的制备温度有利于形成稳定的微乳液,并使得随后的无机前体四乙氧基硅烷(TEOS)水解和缩合反应是有利的。 SiO2 /环氧纳米复合材料是通过在纳米级反向微乳液“水池”内进行TEOS的原位聚合制备的。 FTIR,SEM和通用测试机用于表征复合材料的结构和机械性能。结果表明,最佳的机械性能是在3 wt%的TEOS含量下获得的。与纯环氧树脂相比,复合材料的拉伸强度和弯曲强度分别提高了40%和12%。用FTIR研究了杂化物中二氧化硅结构的形成。 SEM和光学观察显示出韧性的断裂形态以及在无机相和有机相之间的良好混溶性。

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