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摘要
在聚酰亚胺(PI)制备阶段,将SiO2气凝胶粉末加入到N,N-二甲基乙酰胺(DMAc)和聚酰胺酸(PAA)中分别制备复合薄膜,对比研究了在PAA聚合前后加入SiO2气凝胶粉末对PI热稳定性及隔热性能的影响。扫描电子显微镜分析表明在PAA聚合前加入SiO2气凝胶粉末能够使气凝胶在PI基体中分散均匀,形成均匀的热阻网络,同时也保留了气凝胶的孔洞结构。热失重分析表明PI的热稳定性随着SiO2气凝胶含量的增加而提高,当SiO2气凝胶含量为20%时(wt,质量分数,下同),聚合前加入SiO2气凝胶制备的复合薄膜热失重初始温度提高了180℃,而聚合后加入SiO2气凝胶则只提高了87℃。导热系数测试结果表明SiO2气凝胶的加入提高了PI的隔热性能,当SiO2气凝胶含量为20%时,聚合前加入气凝胶制备的复合薄膜的导热系数为0.071W/(m·K),聚合后加入气凝胶制备的复合薄膜导热系数为0.1343W/(m·K)。说明在PAA聚合前加入SiO2气凝胶粉末更能发挥气凝胶的优异性能。
Abstract
In the polyimide(PI) preparation stage,SiO2 aerogel powders was added to N,N-dimethylacetamide (DMAc) and polyamic acid (PAA) to prepare composite films respectively.The effects of adding aerogel powders before and after polymerization on the thermal stability and thermal insulation properties of PI were compared.The scanning electron microscopy (SEM) showed that the addition of aerogel powders before PAA polymerization allowed the aerogel to disperse uniformly on the polyimide matrix,forming a uniform network of thermal resistance while retaining the pore structure of the aerogel.The thermogravimetric (TG) curve shown that the addition of SiO2 aerogel improved the thermal stability of PI.When the addition amount was 20wt%,the initial temperature of the weight loss of the composite film prepared by adding aerogel before polymerization was increased by 180℃,while adding aerogel after polymerization was increased by 87℃.The thermal conductivity test shown that the addition of SiO2 aerogel improved the thermal insulation of PI.When the addition amount was 20wt%,the thermal conductivity of the composite film prepared with adding aerogel before polymerization was 0.071W/(m·K),while adding aerogel after the polymerization was 0.1343W/(m·K).It was indicated that the addition of SiO2 aerogel powders before PAA polymerization can better exert the excellent performance of aerogel.
关键词
SiO2气凝胶
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聚酰亚胺薄膜
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隔热性能
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热稳定性
Key words
SiO2 aerogel
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polyimide film
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thermal insulation performance
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thermal stability
SiO2气凝胶/聚酰亚胺复合薄膜的制备及其隔热性能研究[J].
化工新型材料, 2020, 48(6): 93-96 DOI:
[1] Tillotson T M,Hrubesh L W.Transparent ultralow-density silica aerogels prepared by a two-step sol-gel process[J].Journal of Non-Crystalline Solids,1992,145:44-50.
[2] Fricke J,Emmerling A.Aerogels—preparation,properties,applications[J].1992,77(4):37-87.
[3] Mulder C A M,Lierop J G V.Preparation,densification and characterization of autoclave dried SiO2 gels[M].Berlin:Springer,1986:68-75.
[4] Yoldas B E,Annen M J,Bostaph J.Chemical engineering of aerogel morphology formed under nonsupercritical conditions for thermal insulation[J].Chemistry of Materials,2000,12(8):2475-2484.
[5] 吴晓栋,崔升,王岭.耐高温气凝胶隔热材料的研究进展[J].材料导报,2015,29(9):102-108.
[6] Kistler S S.Coherent expanded aerogels and jellies[J].Nature,1931,127(3211):741.
[7] 周立鸣,邓蔚.纳米孔硅质绝热材料[J].宇航材料工艺,2000,32(9):11-14.
[8] White S,Rasky D,Herlth P.Tough,lightweight,superinsulating aerogel/tile composites have potential industrial applications[J].Materials & Processing Report,1999,14(1):13-16.
[9] Randall J P,Meador M A B,Jana S C.Tailoring mechanical properties of aerogels for aerospace applications[J].ACS Applied Materials & Interfaces,2011,3(3):613-626.
[10] Fricke J,Schwab H,Heinemann U.Vacuum insulation panels-exciting thermal properties and most challenging applications[J].International Journal of Thermophysics,2006,27(4):1123-1139.
[11] Katti A,Shimpi N,Roy S,et al.Chemical,physical,and mechanical characterization of isocyanate cross-linked amine-modified silica aerogels[J].Chemistry of Materials,2006,18(2):285-296.
[12] Tarrío-Saavedra J,López-Beceiro J,Naya S,et al.Effect of silica content on thermal stability of fumed silica/epoxy composites[J].Polymer Degradation & Stability,2008,93(12):2133-2137.
[13] Maghsoudi K,Motahari S,Maghsoudi K,et al.Mechanical,thermal,and hydrophobic properties of silica aerogel-epoxy composites[J].Journal of Applied Polymer Science,2017,135:45706.
[14] 曹红葵.聚酰亚胺性能及合成方法[J].化学推进剂与高分子材料,2008,6(3):24-26.
[15] 冯坚.气凝胶高效隔热材料[M].北京:科学出版社,2016:39-41.
基金资助
国家自然科学基金(51572014)