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Structural effect of monomer type on properties of copolyimides and copolyimide-silica hybrid materials

机译:单体类型对共聚酰亚胺和共聚酰亚胺-二氧化硅杂化材料性能的结构影响

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In this work, the effect of two different diamine monomers, containing phosphine oxide, on thermal, mechanical and morphological properties of copolyimides and their hybrid materials was investigated. Gas separation properties of the synthesized copolyimides were also analysed. Two different diamine monomers with phosphine oxide were bis(3-aminophenyl) phenylphosphine oxide (BAPPO) and bis(3-aminophenoxy-4-phenyl) phenylphosphine oxide (m-BAPPO). In the synthesis of copolyimides 3,3’-diamino-diphenyl sulfone (DDS) was also used as the diamine, as well as 2,2’-bis(3,4-dicarboxyphenyl)hexafluoropropane dianhydride (6FDA). Copolyimide films were prepared by thermal imidization. Hybrid materials containing 5 % SiO2 were synthesised further by sol-gel technique. The Fourier-transform infrared spectroscopy (FTIR), Nuclear magnetic resonance spectroscopy (NMR) confirmed the expected structure. Dynamic mechanical analysis (DMA) demonstrated that m-BAPPO based copolyimides had lower glass transition temperatures (Tg) than BAPPO based copolyimides. m-BAPPO containing copolyimide without silica shifted the thermal decomposition temperature to a higher value. The moduli and strength values of BAPPO diamine containing copolyimide and its hybrid were higher than those of m-BAPPO containing materials. The contact angle measurements showed the hydrophobicity. Scanning electron microscope (SEM) analysis exhibited the silica particles dispersion in the copolyimides. These copolyimides may be used in the coating industry. The CO2 permeability and the permselectivity were the highest among the other values in this study, when m-BAPPO containing copolyimide in the absence of silica was used. The gas permeabilities obtained from this work were in this decreasing order: PCO2 > PO2 > PN2.
机译:在这项工作中,研究了两种不同的含氧化膦的二胺单体对共聚酰亚胺及其杂化材料的热,机械和形态性能的影响。还分析了合成的共聚酰亚胺的气体分离特性。具有氧化膦的两种不同的二胺单体是双(3-氨基苯基)苯基氧化膦(BAPPO)和双(3-氨基苯氧基-4-苯基)苯基氧化膦(m-BAPPO)。在共聚酰亚胺的合成中,还使用了3,3'-二氨基-二苯砜(DDS)作为二胺,以及2,2'-双(3,4-二羧苯基)六氟丙烷二酐(6FDA)。通过热酰亚胺化制备共聚酰亚胺膜。通过溶胶-凝胶技术进一步合成了含5%SiO2的杂化材料。傅里叶变换红外光谱(FTIR),核磁共振光谱(NMR)确认了预期的结构。动态力学分析(DMA)表明,基于m-BAPPO的共聚酰亚胺比基于BAPPO的共聚酰亚胺具有更低的玻璃化转变温度(Tg)。不含二氧化硅的含m-BAPPO的共聚酰亚胺使热分解温度升高。含BAPPO二胺的共聚酰亚胺及其杂化物的模量和强度值高于含m-BAPPO的材料的模量和强度值。接触角测量显示出疏水性。扫描电子显微镜(SEM)分析显示二氧化硅颗粒分散在共聚酰亚胺中。这些共聚酰亚胺可用于涂料工业。当使用不含二氧化硅的含m-BAPPO的共聚酰亚胺时,该研究中的CO2渗透性和渗透选择性最高。从这项工作中获得的气体渗透率按降序排列:PCO2> PO2> PN2。

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