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In-situ grafting of hyperbranched poly(ether ketone)s onto multiwalled carbon nanotubes via the A(3) + B-2 approach

机译:通过A(3)+ B-2方法将超支化聚醚醚原位接枝到多壁碳纳米管上

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Trimesic acid and phenyl ether were in-situ polymerized as A(3) and B-2 monomers, respectively, in the presence of a fixed amount (10 wt %) of multiwalled carbon nanotube (MWNT) to afford hyperbranched poly(ether ketone)s (PEK's)/MWNT nanocomposites. The feed ratios of A(3) and B-2 monomers vary from 3:2 to 1:2 in the A(3) + B-2 polycondensations. The polymerization was carried out in a mildly acidic medium, i.e., poly(phosphoric acid) or PPA, with an optimized amount of phosphorus pentoxide (P2O5) added. The overall evidence based on the data of elemental analysis (EA), thermogravimetric analysis (TGA), Fourier-transform infrared (FT-IR) spectroscopy, and scanning electron microscopy (SEM) implicates that hyperbranched PEK's were attached to the surface of MWNT to form hyperbranched PEK-g-MWNT nanocomposites. Furthermore, MWNT remained structurally intact under the polymerization and workup conditions. Evidently driven by the molecular architecture of globular hyperbranched polymers, the morphology of the nanocomposites resembles "mushroom-like clusters on MWNT stalks". The hyperbranched PEK-g-MWNT nanocomposites were soluble in polar aprotic solvents stemming from numerous carboxylic acids on their surfaces. When some of samples were dispersed in 1 M LiOH aqueous solutions, they formed very stable suspensions. The resulting lithiated nanocomposites are being investigated in the applications such as ion conductivity and energy capacitance.
机译:在固定量(10 wt%)的多壁碳纳米管(MWNT)存在下,将三甲酸和苯醚分别原位聚合为A(3)和B-2单体,以提供超支化聚醚醚酮(PEK)/ MWNT纳米复合材料。在A(3)+ B-2缩聚反应中,A(3)和B-2单体的进料比在3:2至1:2之间变化。聚合反应在中等酸性介质(即聚磷酸或PPA)中进行,并添加了最适量的五氧化二磷(P2O5)。基于元素分析(EA),热重分析(TGA),傅立叶变换红外(FT-IR)光谱和扫描电子显微镜(SEM)数据的整体证据表明,超支化PEK附着在MWNT表面形成超支化PEK-g-MWNT纳米复合材料。此外,MWNT在聚合和后处理条件下保持结构完整。显然,由球形超支化聚合物的分子结构驱动,纳米复合材料的形态类似于“ MWNT茎上的蘑菇状簇”。超支化PEK-g-MWNT纳米复合材料可溶于极性疏质子溶剂,这些溶剂来自表面上的多种羧酸。当一些样品分散在1 M LiOH水溶液中时,它们形成了非常稳定的悬浮液。在诸如离子电导率和能量电容的应用中,正在研究所得的锂化纳米复合材料。

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