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Aromatic Polyimide and Crosslinked Thermally Rearranged Poly(benzoxazole-co-imide) Membranes for Isopropanol Dehydration via Pervaporation

机译:芳族聚酰亚胺和交联的热重排聚(苯并恶唑共酰亚胺)膜,用于通过全蒸发进行异丙醇脱水

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摘要

Novel crosslinked thermally rearranged polybenzoxazole (C-TR-PBO) membranes, which show impressive results for isopropanol dehydration, have been obtained via in-situ thermal conversion of hydroxyl-containing polyimide precursors. The polyimide precursors are synthesized by the polycondensation of three monomers; namely, 4,4′-(hexafluoroisopropylidene) diphthalic anhydride (6FDA), 3,3′-dihydroxybenzidine diamine (HAB) and 3,5-diaminobenzoic acid (DABA). Due to the incorporation of the carboxylic-group containing diamine DABA into an ortho-hydroxypolyimide precursor, the thermal induced crosslinking reaction can be achieved together with the thermal rearrangement process. Consequently, a synergistic effect of high permeability and high selectivity can be realized in one step. The resultant C-TR-PBO membrane exhibits an unambiguous enhancement in permeation flux compared to their polyimide precursors. Moreover, the newly developed C-TR-PBO membrane displays stable isopropanol dehydration performance at 60 °C throughout the continuous 200 hours. The promising preliminary results achieved in this study may offer useful insights for the selection of membrane materials for pervaporation and new methods to molecularly design next-generation pervaporation membranes.
机译:通过含羟基的聚酰亚胺前体的原位热转化,获得了新型的交联的热重排聚苯并恶唑(C-TR-PBO)膜,该膜对异丙醇脱水显示出令人印象深刻的结果。聚酰亚胺前体是通过三种单体的缩聚反应合成的。即4,4′-(六氟异亚丙基)二邻苯二甲酸酐(6FDA),3,3′-二羟基联苯胺二胺(HAB)和3,5-二氨基苯甲酸(DABA)。由于将含羧基的二胺DABA掺入邻羟基聚酰亚胺前体中,可以与热重排过程一起实现热诱导的交联反应。因此,可以一步实现高渗透性和高选择性的协同效果。与它们的聚酰亚胺前体相比,所得的C-TR-PBO膜表现出明显的渗透通量提高。此外,新开发的C-TR-PBO膜在连续200小时内在60°C的温度下均表现出稳定的异丙醇脱水性能。在这项研究中取得的有希望的初步结果可能为选择用于全蒸发膜的材料和分子设计下一代全蒸发膜的新方法提供有用的见解。

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