4.5 Article

First-principles investigation of dimethyl-functionalized MIL-53(Al) metal-organic framework for adsorption and separation of xylene isomers

Journal

JOURNAL OF POROUS MATERIALS
Volume 28, Issue 2, Pages 579-591

Publisher

SPRINGER
DOI: 10.1007/s10934-020-01016-6

Keywords

Metal– organic framework; MIL-53(Al); Xylene; Adsorption; Separation; Density functional theory

Funding

  1. Ministry of Education (MOE) Malaysia through Fundamental Research Grant Scheme [FRGS/1/2017/STG04/UPM/02/5]

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Functionalization of organic linkers in metal-organic frameworks has been a popular method for various applications, with dimethyl functionalization showing improved adsorption properties for xylene separation. Among the isomers, the meta-dimethyl-MIL-53(Al) complex exhibited the lowest energy and highest thermodynamic stability, making it a potential candidate for xylene adsorption and separation.
Functionalization of organic linker in metal-organic frameworks (MOFs) has been a popular method to utilize the porous material for a wide range of applications. In xylene separation, dimethyl functionalization of MOFs had demonstrated improved adsorptions properties. However, the effect of different xylene isomers on the organic linker is still not fully understood. In this work, the MIL-53(Al) MOF was functionalized with two methyl groups in ortho-, meta- and para-positions. The energy and thermochemical properties of xylene isomers when complexed dimethyl functionalized MIL-53(Al) MOFs were investigated using semiempirical quantum chemical PM6 method. The adsorption model of xylene isomers over meta-dimethyl-MIL-53(Al) (MDM) produced the lowest energy and the most thermochemically stable complex. The electronic properties, natural charge, nuclear magnetic resonance, aromaticity and molecular electrostatic potential of MDM complexes were further characterized using density functional theory (DFT) calculations at B3LYP/6-31G(d) level. DFT calculations revealed that the complex of MDM with m-xylene had the lowest adsorption energy and the highest reactivity, caused by the oxygen atoms surrounding the Al metal ion. In contrast, the complex of MDM with o-xylene had the highest energy of adsorption and the lowest reactivity, mostly governed by weak pi interactions. Based on the results, we propose the use of MDM MOF for adsorption and separation of xylene isomers.

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