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In situ fabrication of high performance polyimide/tyrosine-modified layered silicate nanocomposites

机译:高性能聚酰亚胺/酪氨酸改性的层状硅酸盐纳米复合材料的原位制备

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摘要

Several novel organicinorganic hybrids consisting of high performance polyimide (PI) and organically modified montmorillonite (OMMT) with trifunctional swelling agent were successfully prepared by in situ polymerization technique. In this way, at first, OMMT was prepared by surface treatment of Cloisite Na ~+ with protonated form of bioactive L-tyrosine amino acid. Amine functional groups of this swelling agent formed an ionic bond with the negatively charged silicates, whereas the remaining acidic and phenolic functional groups are available for further interaction with PI chains. Then, organo-soluble PI with benzimidazole pendent group was prepared from pyromellitic dianhydride and 4-(3, 5-diaminophenyl)-benzimidazole in dry N,N-dimethylacetamide. PI/OMMT nanocomposites enclosing 110 wt.% of OMMT were successfully prepared by an in situ polymerization reaction through thermal imidization up to 300°C. Also, the relationship between the properties and OMMT content of the PI hybrid films were examined using Fourier-transform infrared spectroscopy, X-ray diffraction measurements and electronic microscopy (FE-SEM and TEM). The silicate layers in the polymer matrix were exfoliated as confirmed by XRD, FE-SEM and TEM techniques. The PI/OMMT films have good optical transparencies, and are almost colorless. The thermal stability of hybrids such as the decomposition temperature and weight residue at 800°C were also increased with increasing OMMT content.
机译:通过原位聚合技术成功地制备了由高性能聚酰亚胺(PI)和有机改性的蒙脱石(OMMT)与三官能溶胀剂组成的几种新型有机无机杂化物。以此方式,首先,通过用生物活性的L-酪氨酸氨基酸的质子化形式对Cloisite Na〜+进行表面处理来制备OMMT。该膨胀剂的胺官能团与带负电荷的硅酸盐形成离子键,而其余的酸性和酚官能团可用于与PI链进一步相互作用。然后,由均苯四甲酸二酐和4-(3,5-二氨基苯基)-苯并咪唑在干燥的N,N-二甲基乙酰胺中制备具有苯并咪唑侧基的有机可溶性PI。通过至多300℃的热酰亚胺化,通过原位聚合反应成功地制备了包含110重量%的OMMT的PI / OMMT纳米复合材料。此外,使用傅立叶变换红外光谱,X射线衍射测量和电子显微镜(FE-SEM和TEM)检查了PI杂化膜的性能与OMMT含量之间的关系。如通过XRD,FE-SEM和TEM技术所证实的,剥离聚合物基质中的硅酸盐层。 PI / OMMT膜具有良好的光学透明性,几乎是无色的。随着OMMT含量的增加,杂化物的热稳定性(如分解温度和800℃下的重量残留物)也增加。

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