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一价、二价和三价阳离子交换的金属-有机骨架中 CO2 的吸附:分子模拟研究。

CO2 adsorption in mono-, di- and trivalent cation-exchanged metal-organic frameworks: a molecular simulation study.

机构信息

Department of Chemical and Biomolecular Engineering, National University of Singapore, 117576, Singapore.

出版信息

Langmuir. 2012 Feb 28;28(8):3903-10. doi: 10.1021/la205152f. Epub 2012 Feb 14.

Abstract

A molecular simulation study is reported for CO(2) adsorption in rho zeolite-like metal-organic framework (rho-ZMOF) exchanged with a series of cations (Na(+), K(+), Rb(+), Cs(+), Mg(2+), Ca(2+), and Al(3+)). The isosteric heat and Henry's constant at infinite dilution increase monotonically with increasing charge-to-diameter ratio of cation (Cs(+) < Rb(+) < K(+) < Na(+) < Ca(2+) < Mg(2+) < Al(3+)). At low pressures, cations act as preferential adsorption sites for CO(2) and the capacity follows the charge-to-diameter ratio. However, the free volume of framework becomes predominant with increasing pressure and Mg-rho-ZMOF appears to possess the highest saturation capacity. The equilibrium locations of cations are observed to shift slightly upon CO(2) adsorption. Furthermore, the adsorption selectivity of CO(2)/H(2) mixture increases as Cs(+) < Rb(+) < K(+) < Na(+) < Ca(2+) < Mg(2+) ≈ Al(3+). At ambient conditions, the selectivity is in the range of 800-3000 and significantly higher than in other nanoporous materials. In the presence of 0.1% H(2)O, the selectivity decreases drastically because of the competitive adsorption between H(2)O and CO(2), and shows a similar value in all of the cation-exchanged rho-ZMOFs. This simulation study provides microscopic insight into the important role of cations in governing gas adsorption and separation, and suggests that the performance of ionic rho-ZMOF can be tailored by cations.

摘要

研究了一系列阳离子(Na(+)、K(+)、Rb(+)、Cs(+)、Mg(2+)、Ca(2+)和 Al(3+))交换的 rho 沸石型金属有机骨架(rho-ZMOF)中 CO(2)的吸附。等吸附热和无限稀释亨利常数随阳离子的荷质比单调增加(Cs(+) < Rb(+) < K(+) < Na(+) < Ca(2+) < Mg(2+) < Al(3+))。在低压下,阳离子优先作为 CO(2)的吸附位,且容量随荷质比增大。然而,随着压力增加,骨架的自由体积变得占主导地位,Mg-rho-ZMOF 似乎具有最高的饱和容量。观察到阳离子的平衡位置在 CO(2)吸附后略有移动。此外,CO(2)/H(2)混合物的吸附选择性随 Cs(+) < Rb(+) < K(+) < Na(+) < Ca(2+) < Mg(2+) ≈ Al(3+)增加。在环境条件下,选择性在 800-3000 之间,明显高于其他纳米多孔材料。在 0.1% H(2)O 存在下,由于 H(2)O 和 CO(2)的竞争吸附,选择性急剧下降,并且在所有阳离子交换的 rho-ZMOF 中都具有相似的值。这项模拟研究提供了微观见解,表明阳离子在调控气体吸附和分离方面起着重要作用,并表明离子 rho-ZMOF 的性能可以通过阳离子进行调节。

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