...
首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Physical aging in glassy mixed matrix membranes; tuning particle interaction for mechanically robust nanocomposite films
【24h】

Physical aging in glassy mixed matrix membranes; tuning particle interaction for mechanically robust nanocomposite films

机译:玻璃态混合基质膜的物理老化;调整机械健壮的纳米复合材料薄膜的颗粒相互作用

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Despite the exceptional separation performance of modern glassy mixed matrix membranes, these materials are not being utilized to improve the performance of existing membrane technologies. Nanosized additives can greatly enhance separation performance, and have recently been used to overcome age-related performance loss of high performance MMMs. However nano-additives also compromise the structural integrity of films and little is known on how physical aging affects their mechanical properties over time. A solution for both physical aging and mechanical instability is required before these high performance materials can be utilised in industrial membrane applications. Here, we examine physical aging in mixed matrix membranes through mechanical properties and single gas permeation measurements using three glassy polymers, Matrimid (R) 5218, poly-1-trimethylsilyl-1-propyne (PTMSP), and a polymer of intrinsic microporosity (PIM-1); and a range of nano-scale additives; silica, PAF-1, UiO-66, and Ti(5)UiO-66, each previously shown to enhance gas separation performance. We find polymeradditive interactions strongly influence local physical aging and play a key role in determining the overall material properties of glassy nanocomposite films. Strong interface interactions can slow physical aging, and may not correlate to reinforced or age-stable films. Whereas traditionally 'incompatible' nanocomposites exhibit mechanical properties that can improve over time and even outperform their native polymers. Tuning polymer-additive interactions is vital to achieving the physical aging, mechanical stability, and permselectivity requirements of advanced mixed matrix membrane technologies and reducing the enormous global energy cost of separation processes.
机译:尽管现代玻璃状混合基质膜具有出色的分离性能,但这些材料并未用于改善现有膜技术的性能。纳米级添加剂可以大大提高分离性能,近来已被用于克服高性能MMM的老化性能损失。然而,纳米添加剂也损害了膜的结构完整性,并且关于物理老化如何随着时间影响其机械性能的知之甚少。在将这些高性能材料用于工业膜应用之前,需要一种物理老化和机械不稳定性的解决方案。在这里,我们使用三种玻璃态聚合物Matrimid(R)5218,聚-1-三甲基甲硅烷基-1-丙炔(PTMSP)和固有微孔性聚合物(PIM)通过机械性能和单气体渗透测量来检查混合基质膜中的物理老化-1);以及一系列纳米级添加剂;二氧化硅,PAF-1,UiO-66和Ti(5)UiO-66,先前均显示可增强气体分离性能。我们发现聚合物加成相互作用强烈影响局部物理老化,并在确定玻璃态纳米复合薄膜的整体材料性能中起关键作用。强烈的界面相互作用可以减缓物理老化,并且可能与增强或老化的薄膜无关。传统上,“不相容”的纳米复合材料表现出的机械性能会随着时间的流逝而改善,甚至优于其天然聚合物。调节聚合物与添加剂的相互作用对于实现先进的混合基质膜技术的物理老化,机械稳定性和渗透选择性要求以及降低分离过程的巨大全球能源成本至关重要。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号