Hasegawa Masatoshi, Miyama Takuya, Ishii Junichi, Watanabe Daisuke, Uchida Akira
Department of Chemistry, Faculty of Science, Toho University, 2-2-1 Miyama, Funabashi 274-8510, Chiba, Japan.
High Performance Materials Research & Development Department, High Performance Materials Company, ENEOS Corp., Yokohama 231-0815, Kanagawa, Japan.
Polymers (Basel). 2023 Sep 20;15(18):3838. doi: 10.3390/polym15183838.
In this paper, novel colorless polyimides (PIs) derived from 5,5'-bis(2,3-norbornanedicarboxylic anhydride) (BNBDA) were presented. The results of single-crystal X-ray structural analysis using a BNBDA-based model compound suggested that it had a unique steric structure with high structural linearity. Therefore, BNBDA is expected to afford new colorless PI films with an extremely high glass transition temperature () and a low linear coefficient of thermal expansion (CTE) when combined with aromatic diamines with rigid and linear structures (typically, 2,2'-bis(trifluoromethyl)benzidine (TFMB)). However, the polyaddition of BNBDA and TFMB did not form a PI precursor with a sufficiently high molecular weight; consequently, the formation of a flexible, free-standing PI film via the two-step process was inhibited because of its brittleness. One-pot polycondensation was also unsuccessful in this system because of precipitation during the reaction, probably owing to the poor solubility of the initially yielded BNBDA/TFMB imide oligomers. The combinations of (1) the structural modification of the BNBDA/TFMB system, (2) the application of a modified one-pot process, in which the conditions of the temperature-rising profile, solvents, azeotropic agent, catalysts, and reactor were refined, and (3) the optimization of the film preparation conditions overcame the trade-off between low CTE and high film toughness and afforded unprecedented PI films with well-balanced properties, simultaneously achieving excellent optical transparency, extremely high , sufficiently high thermal stability, low CTE, high toughness, relatively low water uptake, and excellent solution processability.
本文介绍了由5,5'-双(2,3-降冰片烷二羧酸酐)(BNBDA)衍生的新型无色聚酰亚胺(PIs)。使用基于BNBDA的模型化合物进行的单晶X射线结构分析结果表明,它具有独特的空间结构和高结构线性度。因此,当与具有刚性和线性结构的芳族二胺(通常为2,2'-双(三氟甲基)联苯胺(TFMB))结合时,预计BNBDA能够提供具有极高玻璃化转变温度()和低热膨胀线性系数(CTE)的新型无色PI薄膜。然而,BNBDA和TFMB的聚加成反应并未形成具有足够高分子量的PI前体;因此,由于其脆性,通过两步法形成柔性自立PI薄膜的过程受到抑制。由于反应过程中出现沉淀,该体系中的一锅法缩聚也未成功,这可能是由于最初生成的BNBDA/TFMB酰亚胺低聚物的溶解性较差。(1)BNBDA/TFMB体系的结构改性、(2)改进的一锅法的应用(其中对升温曲线、溶剂、共沸剂、催化剂和反应器的条件进行了优化)以及(3)薄膜制备条件的优化相结合,克服了低CTE和高薄膜韧性之间的权衡,得到了具有平衡性能的前所未有的PI薄膜,同时实现了优异的光学透明度、极高的、足够高的热稳定性、低CTE、高韧性、相对较低的吸水率和优异的溶液加工性能。