Yeob Jongin, Hong Sung Woo, Koh Won-Gun, Park In
Department of Chemical and Biomolecular Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 03722, Republic of Korea.
Research Institute of Clean Manufacturing System, Korea Institute of Industrial Technology (KITECH), 89 Yangdaegiro-gil, Ipjang-myeon, Seobuk-gu, Cheonan-si 31056, Republic of Korea.
Polymers (Basel). 2024 Jan 22;16(2):297. doi: 10.3390/polym16020297.
Polyimide (PI) composite films with enhanced mechanical properties were prepared by incorporating modified fumed silica (FS) particles while preserving their optical and thermal characteristics. The PI matrix was synthesized using a fluorinated diamine, a fluorinated dianhydride, and a rigid biphenyl dianhydride via chemical imidization. Commercially available FS particles, including unmodified FS particles (0-FS) and particles modified with dimethyl (2-FS), trimethyl (3-FS), octyl (8-FS), octamethylcyclotetrasiloxane (D4-FS), and polydimethylsiloxane (PDMS-FS) were used. Scanning electron microscope images and nitrogen adsorption-desorption isotherms revealed well-defined porous structures in the FS particles. The water contact angles on the composite films increased compared to those of the pristine PI films, indicating improved water resistance. The PI/0-FS films exhibited a typical trade-off relationship between tensile modulus and elongation at break, as observed in conventional composites. Owing to the poor compatibility and agglomeration of the PDMS-FS particles, the PI/PDMS-FS composite films exhibited poor mechanical performance and diminished optical characteristics. Although the longer-chained FS particles (8- and D4-FS) improved the tensile modulus of the PI film by up to 12%, a reduction of more than 20% in toughness was observed. The PI composite films containing the methylated FS particles (2- and 3-FS) outperformed 8- and D4-FS in terms of mechanical properties, with PI/3-FS films showing an over 10% increased tensile modulus (from 4.07 to 4.42 GPa) and 15% improved toughness (from 6.97 to 8.04 MJ/m) at 7 wt. % silica loading. Except for the PI/PDMS-FS composites, all composite film samples exhibited more than 86% transmittance at 550 nm. Regarding thermal properties, the glass transition temperature () and thermal stability remained stable for most composite films. In addition, PI/3-FS films demonstrated enhanced dimensional stability with lower coefficients of thermal expansion (from 47.3 to 34.5 ppm/°C). Overall, this study highlights the potential of incorporating specific modified FS particles to tailor the mechanical, optical, and thermal properties of PI composite films.
通过加入改性气相二氧化硅(FS)颗粒,同时保持其光学和热学特性,制备了具有增强机械性能的聚酰亚胺(PI)复合薄膜。PI基体通过化学亚胺化反应,使用氟化二胺、氟化二酐和刚性联苯二酐合成。使用了市售的FS颗粒,包括未改性的FS颗粒(0-FS)以及用二甲基(2-FS)、三甲基(3-FS)、辛基(8-FS)、八甲基环四硅氧烷(D4-FS)和聚二甲基硅氧烷(PDMS-FS)改性的颗粒。扫描电子显微镜图像和氮气吸附-脱附等温线显示FS颗粒中具有明确的多孔结构。与原始PI薄膜相比,复合薄膜上的水接触角增大,表明耐水性提高。如在传统复合材料中观察到的那样,PI/0-FS薄膜在拉伸模量和断裂伸长率之间表现出典型的权衡关系。由于PDMS-FS颗粒的相容性差和团聚,PI/PDMS-FS复合薄膜表现出较差的机械性能和降低的光学特性。尽管长链FS颗粒(8-FS和D4-FS)使PI薄膜的拉伸模量提高了高达12%,但观察到韧性降低了20%以上。含有甲基化FS颗粒(2-FS和3-FS)的PI复合薄膜在机械性能方面优于8-FS和D4-FS,在7 wt.%的二氧化硅负载量下,PI/3-FS薄膜的拉伸模量提高了10%以上(从4.07 GPa提高到4.42 GPa),韧性提高了15%(从6.97 MJ/m提高到8.04 MJ/m)。除了PI/PDMS-FS复合材料外,所有复合薄膜样品在550 nm处的透光率均超过86%。关于热性能,大多数复合薄膜的玻璃化转变温度()和热稳定性保持稳定。此外,PI/3-FS薄膜表现出更高的尺寸稳定性,热膨胀系数更低(从47.3 ppm/°C降至34.5 ppm/°C)。总体而言,本研究突出了加入特定改性FS颗粒以定制PI复合薄膜的机械、光学和热性能的潜力。