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使用聚合物衍生碳膜实现二甲苯异构体净化的沸石样性能。

Zeolite-like performance for xylene isomer purification using polymer-derived carbon membranes.

机构信息

School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332.

School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, GA 30332.

出版信息

Proc Natl Acad Sci U S A. 2021 Sep 14;118(37). doi: 10.1073/pnas.2022202118.

Abstract

Polymers of intrinsic microporosity (PIMs) have been used as precursors for the fabrication of porous carbon molecular sieve (CMS) membranes. PIM-1, a prototypical PIM material, uses a fused-ring structure to increase chain rigidity between spirobisindane repeat units. These two factors inhibit effective chain packing, thus resulting in high free volume within the membrane. However, a decrease of pore size and porosity was observed after pyrolytic conversion of PIM-1 to CMS membranes, attributed to the destruction of the spirocenter, which results in the "flattening" of the polymer backbone and graphite-like stacking of carbonaceous strands. Here, a spirobifluorene-based polymer of intrinsic microporosity (PIM-SBF) was synthesized and used to fabricate CMS membranes that showed significant increases in -xylene permeability (approximately four times), with little loss in -xylene/-xylene selectivity (13.4 versus 14.7) for equimolar xylene vapor separations when compared to PIM-1-derived CMS membranes. This work suggests that it is feasible to fabricate such highly microporous CMS membranes with performances that exceed current state-of-the-art zeolites at high xylene loadings.

摘要

聚合物固有微孔材料(PIMs)已被用作制造多孔碳分子筛(CMS)膜的前体。PIM-1 是一种典型的 PIM 材料,它使用稠合环结构来增加螺双茚满重复单元之间的链刚性。这两个因素抑制了有效链堆积,从而导致膜内具有高的自由体积。然而,在将 PIM-1 热解转化为 CMS 膜后,观察到孔径和孔隙率的降低,这归因于螺中心的破坏,其导致聚合物主链的“扁平化”和碳质链的石墨状堆积。在这里,合成了基于螺二芴的固有微孔聚合物(PIM-SBF),并将其用于制造 CMS 膜,与 PIM-1 衍生的 CMS 膜相比,用于等摩尔二甲苯蒸气分离时,对二甲苯的渗透性显著提高(约四倍),而对二甲苯/对二甲苯选择性几乎没有损失(13.4 对 14.7)。这项工作表明,制造具有超过当前最先进沸石的性能的这种高度微孔 CMS 膜是可行的,即使在高二甲苯负载下也是如此。

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