Choi Moon Young, Lim Ae Ran, Chang Jin-Hae
Graduate School of Carbon Convergence Engineering, Jeonju University Jeonju 55069 Korea.
Department of Science Education, Jeonju University Jeonju 55069 Korea
RSC Adv. 2025 May 8;15(19):15178-15189. doi: 10.1039/d5ra02285a. eCollection 2025 May 6.
Two types of polyamic acids (PAAs) were synthesized using 4-(2,5-dioxotetrahydrofuran-3-yl)-1,2,3,4-tetrahydro-naphthalene-1,2-dicarboxylic anhydride and two diamines, 2,2-bis[4-(4-aminophenoxy)phenyl] propane and 2,2-bis[4-(4-aminophenoxy)phenyl]hexafluoropropane. Colorless and transparent polyimide (CPI) hybrid films were synthesized by dispersing various amounts (1-4 wt%) of Cloisite 30B (CS30B) into a PAA matrix using a solution intercalation method. The thermomechanical properties, clay dispersion morphology, optical transparency, and solubility of the two types of CPI hybrid films synthesized using different monomer structures were evaluated at various CS30B concentrations, and the results were compared. An increase in the thermomechanical properties of the CPI hybrid films was observed with only a small amount of organoclay dispersion, and the maximum enhancement in the physical properties occurred at a specific, critical clay content. Electron microscopy revealed that at low concentrations, the clay was uniformly dispersed throughout the polymer matrix at the nanoscale level but aggregated when added beyond a critical level. Structural changes in the CPI monomers and variations in CS30B content significantly influenced the physical properties of the CPI hybrid films. This study also highlighted the structure of an eco-friendly CPI designed to exhibit desirable physical properties without halogen elements, such as fluorine, which are environmentally regulated substances.
使用4-(2,5-二氧代四氢呋喃-3-基)-1,2,3,4-四氢萘-1,2-二羧酸酐与两种二胺(2,2-双[4-(4-氨基苯氧基)苯基]丙烷和2,2-双[4-(4-氨基苯氧基)苯基]六氟丙烷)合成了两种聚酰胺酸(PAA)。通过溶液插层法将不同量(1-4 wt%)的Cloisite 30B(CS30B)分散到PAA基体中,合成了无色透明的聚酰亚胺(CPI)杂化膜。在不同的CS30B浓度下,对使用不同单体结构合成的两种CPI杂化膜的热机械性能、粘土分散形态、光学透明度和溶解性进行了评估,并对结果进行了比较。观察到仅少量有机粘土分散就能使CPI杂化膜的热机械性能提高,并且在特定的临界粘土含量下物理性能有最大增强。电子显微镜显示,在低浓度下,粘土在纳米尺度上均匀分散在整个聚合物基体中,但超过临界水平添加时会发生聚集。CPI单体的结构变化和CS30B含量的变化显著影响了CPI杂化膜的物理性能。本研究还突出了一种环保型CPI的结构,该CPI设计为在无氟等受环境管制的卤素元素的情况下展现出理想的物理性能。