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Role of filler and its heterostructure on moisture sorption mechanisms in polyimide films

机译:填料及其异质结构对聚酰亚胺薄膜吸湿机理的作用

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摘要

Moisture sorption and diffusion exacerbate hygrothermal aging and can significantly alter the chemical and mechanical properties of polymeric-based components over time. In this study, we employ a multi-pronged multi-scale approach to model and understand moisture diffusion and sorption processes in polyimide polymers. A reactive transport model with triple-mode sorption (i.e., Henry’s, Langmuir, and pooling), experiments, and first principles atomistic computations were combined to synergistically explore representative systems of Kapton H and Kapton HN polymers. We find that the CaHPO4 processing aid used in Kapton HN increases the total moisture uptake (~0.5 wt%) relative to Kapton H. Henry’s mode is found to play a major role in moisture uptake for both materials, accounting for >90% contribution to total uptake.However, the pooling mode uptake in Kapton HN was ~5 times higher than in Kapton H. First principles thermodynamics calculations based on density functional theory predict that water molecules chemisorb (with binding energy  ~17–25 kcal/mol) on CaHPO4 crystal surfaces. We identify significant anisotropy in surface binding affinity, suggesting a possible route to tune and mitigate moisture uptake in Kapton-based systems through controlled crystal growth favoring exposure of CaHPO4 (101) surfaces during manufacturing.
机译:水分的吸收和扩散会加剧湿热老化,并随着时间的推移会显着改变聚合物基成分的化学和机械性能。在这项研究中,我们采用多管齐下的多尺度方法对聚酰亚胺聚合物中的水分扩散和吸附过程进行建模和理解。具有三重模式吸附的反应性传输模型(即,亨利,朗缪尔和池),实验和第一性原理的原子计算相结合,可以协同探索Kapton H和Kapton HN聚合物的代表性体系。我们发现,相对于Kapton H,用于Kapton HN的CaHPO4加工助剂可增加总水分吸收(〜0.5 wt%)。发现Henry的模式在两种材料的水分吸收中均起主要作用,占> 90%的贡献。但是,Kapton HN的池化模式吸收比Kapton H高约5倍。基于密度泛函理论的第一原理热力学计算预测,水分子会在CaHPO4上发生化学吸附(结合能约为17-25 kcal / mol)。晶体表面。我们发现表面结合亲和力存在显着的各向异性,这表明通过控制晶体生长,在制造过程中有利于CaHPO4(101)暴露,可以调整和减轻基于Kapton的系统中的水分吸收。

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