Effective model for olefin/paraffin separation using (Co, Fe, Mn, Ni)-MOF-74

Journal Article (2017)
Author(s)

A. Luna-Triguero (University Pablo de Olavide)

J.M. Vicent Luna (University Pablo de Olavide)

T. Becker (TU Delft - Engineering Thermodynamics)

T. J.H. Vlugt (TU Delft - Engineering Thermodynamics)

David Dubbeldam (Universiteit van Amsterdam)

P Gomez-Alvarez (University Pablo de Olavide)

S Calero (University Pablo de Olavide)

Research Group
Engineering Thermodynamics
Copyright
© 2017 Azahara Luna-Triguero, J.M. Vicent Luna, T. Becker, T.J.H. Vlugt, D. Dubbeldam, Paula Gomez-Alvarez, Sofia Calero
DOI related publication
https://doi.org/10.1002/slct.201601095
More Info
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Publication Year
2017
Language
English
Copyright
© 2017 Azahara Luna-Triguero, J.M. Vicent Luna, T. Becker, T.J.H. Vlugt, D. Dubbeldam, Paula Gomez-Alvarez, Sofia Calero
Research Group
Engineering Thermodynamics
Issue number
2
Volume number
2
Pages (from-to)
665-672
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Abstract

An increase in demand for energy efficient processes for the separation of saturated and unsaturated light hydrocarbons mixtures drives the need of noncryogenic processes. The adsorptive separation using Metal-Organic Frameworks with coordinatively unsaturated metal sites may provide a cost-effective alternative due to the strong binding of the metal cation with the unsaturated hydrocarbons. Since experiments on adsorption equilibrium of gas mixtures are challenging, we propose classical force field based simulations to analyse the ability of MOF-74 with different metal substitutions for the separation of C2 and C3 olefin/paraffin binary mixtures. We parametrized the force field by fitting to available experimental single-component adsorption isotherms of ethane, ethene, propane, and propene in M–MOF-74 (M=Co, Fe, Mn, and Ni). The force field was validated for a variety of temperatures ranged from 273 K to 353 K. We then conducted Monte Carlo simulations in the Grand-Canonical ensemble to elucidate the adsorption mechanisms of the saturated/unsaturated hydrocarbon mixtures, at 318 K and 353 K. We computed the adsorption isotherms, and from these the adsorption selectivity, and addressed the variations of MOF properties with different metal cations. Fe-based MOF-74 appears the best option for both ethane/ethene and propane/propene separation applications. This finding partly agrees with previous work based on the Ideal Adsorbed Solution Theory.

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