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Effects of materials, processing, and operating conditions on the morphology and gas transport properties of mixed matrix membranes.

机译:材料,工艺和操作条件对混合基质膜的形态和气体传输性能的影响。

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Gas separation membranes are currently based on polymers, which are limited by a trade-off between permeability (productivity) and selectivity. Zeolites offer significantly higher selectivities than polymers; however their properties make them prohibitively expensive to process into membranes. Organic-inorganic, or "mixed matrix", materials may provide the basis for the next generation of economical, high performance membranes. The topic of this research is mixed matrix materials comprising a dispersion of zeolites in a polymer matrix.; A major limitation of mixed matrix technology is the inability to prepare membranes from selected polymers and sieves with properties approaching the theoretical predictions. This difficulty is related largely to undesirable properties of the polymer-sieve interface, and this work seeks to understand and control these interfacial properties. First, an understanding of membrane formation is presented to explain how nonideal interfacial morphologies form. Factors affecting this process include: polymer flexibility, polymer-sieve affinity, and membrane preparation conditions. Membrane preparation conditions affect the propensity for stress to accumulate at the polymer-sieve interface, and depending on the severity of the stress, the likelihood that the polymer-sieve interface will fail. The next part of this work details experiments undertaken to better understand the factors affecting membrane morphology and transport properties. Factors ranging from material selection (e.g. silane coupling agent selection), dope formulation (e.g. polymer "priming", sieve settling), and membrane preparation conditions (e.g. casting surface, temperature) were investigated. The final part of this work considers additional effects on mixed matrix properties caused by contaminants and minor feed components. A framework has been developed to account for the effects of potential impurities in the feed gas on the polymer, zeolite, and mixed matrix membrane. Based on this framework and results with model impurities, it appears that strongly sorbing components selectively displace the desired gases from the zeolite, preventing improved selectivity in mixed matrix membranes.; This work has developed a better understanding of the factors that affect mixed matrix membrane performance and identified new ones that require additional study. After further development, this technology should allow for the increased application of membranes for the separation of gases and possibly also vapors and liquids.
机译:气体分离膜当前基于聚合物,其受到渗透性(生产率)和选择性之间的权衡的限制。沸石的选择性比聚合物高得多。然而,它们的性质使得它们加工成膜非常昂贵。有机-无机或“混合基质”材料可为下一代经济高效的膜提供基础。该研究的主题是在聚合物基质中包含沸石分散体的混合基质材料。混合基质技术的主要局限性在于无法用性能接近理论预测值的所选聚合物和筛子制备膜。该困难主要与聚合物-筛子界面的不良性质有关,这项工作旨在理解和控制这些界面性质。首先,介绍了对膜形成的理解,以解释非理想界面形态的形成方式。影响该过程的因素包括:聚合物的柔韧性,聚合物筛的亲和力和膜的制备条件。膜的制备条件影响应力在聚合物-筛子界面上积累的倾向,并且取决于应力的严重程度,聚合物-筛子界面失效的可能性。这项工作的下一部分详细介绍了为更好地了解影响膜形态和运输特性的因素而进行的实验。研究了各种因素,包括材料选择(例如硅烷偶联剂选择),涂料配方(例如聚合物“底涂”,筛子沉降)和膜制备条件(例如流延表面,温度)。这项工作的最后一部分考虑了污染物和微量饲料成分对混合基质性能的其他影响。已经开发出一种框架以说明进料气中潜在杂质对聚合物,沸石和混合基质膜的影响。基于该框架和模型杂质的结果,看来强吸附组分选择性地从沸石中置换出所需的气体,从而阻止了混合基质膜中选择性的提高。这项工作对影响混合基质膜性能的因素有了更好的了解,并确定了需要进一步研究的新因素。在进一步发展之后,该技术应允许增加膜的应用,以分离气体以及可能的蒸气和液体。

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