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聚合物膜材料物理老化的分子模拟

Molecular simulations of physical aging in polymer membrane materials.

作者信息

Wang Xiao-Yan, Willmore Frank T, Raharjo Roy D, Wang Xiaochu, Freeman Benny D, Hill Anita J, Sanchez Isaac C

机构信息

Department of Chemical Engineering, University of Texas at Austin, Austin, Texas 78712, USA.

出版信息

J Phys Chem B. 2006 Aug 24;110(33):16685-93. doi: 10.1021/jp0622334.

Abstract

Poly(1-trimethylsilyl-1-propyne) (PTMSP), the most permeable polymer known, undergoes rapid physical aging. The permeability of PTMSP to gases and vapors decreases dramatically with physical aging. Cavity size (free volume) distributions were calculated in as-cast and aged PTMSP, using an energetic based cavity-sizing algorithm. The large cavities found in as-cast PTMSP disappear in aged PTMSP, which is consistent with the positron annihilation lifetime spectroscopy (PALS) measurements. We also characterized the connectivity of cavities in both as-cast and aged PTMSP membranes. Cavities are more connected in as-cast PTMSP than in aged PTMSP. The average cavity sizes calculated from computer simulation are in good agreement with PALS measurements. The transport and sorption properties of gases in as-cast and aged PTMSP are also measured by molecular simulation. Computer simulations showed the decrease of permeability and the increase of permeability selectivity in PTMSP membranes with physical aging, which agrees with experimental observations. The reduction in gas permeability with physical aging results mainly from the decrease of diffusion coefficients. Solubility coefficients show no significant changes with physical aging.

摘要

聚(1-三甲基硅基-1-丙炔)(PTMSP)是已知渗透性最强的聚合物,会经历快速的物理老化。随着物理老化,PTMSP对气体和蒸汽的渗透性会急剧下降。使用基于能量的空穴尺寸算法,计算了铸态和老化PTMSP中的空穴尺寸(自由体积)分布。在铸态PTMSP中发现的大空穴在老化PTMSP中消失,这与正电子湮没寿命谱(PALS)测量结果一致。我们还对铸态和老化PTMSP膜中空穴的连通性进行了表征。铸态PTMSP中的空穴比老化PTMSP中的空穴连接性更强。通过计算机模拟计算出的平均空穴尺寸与PALS测量结果吻合良好。还通过分子模拟测量了铸态和老化PTMSP中气体的传输和吸附特性。计算机模拟表明,随着物理老化,PTMSP膜的渗透性降低,渗透选择性增加,这与实验观察结果一致。物理老化导致气体渗透性降低主要是由于扩散系数减小。溶解度系数随物理老化没有显著变化。

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