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Design of Graphene/Ionic Liquid Composites for Carbon Capture

Song Wang, Shannon M. Mahurin, Sheng Dai, De‐en Jiang

2021ACS Applied Materials & Interfaces34 citationsDOIOpen Access PDF

Abstract

Pore size is a crucial factor impacting gas separation in porous separation materials, but how to control the pore size to optimize the separation performance remains a challenge. Here, we propose a design of graphene/ionic liquid composites with tunable slit pore sizes, where cations and anions of ionic liquids are intercalated between graphene layers. By varying the sizes of the ions, we show from first-principles density functional theory calculations that the accessible pore size can be tuned from 3.4 to 6.0 Å. Grand canonical Monte Carlo simulations of gas sorption find that the composite materials possess high CO2 uptake at room temperature and 1 bar (up to ∼8.5 mmol/g). Further simulations of the sorption of gas mixtures reveal that high CO2/N2 and CO2/CH4 adsorption selectivities can be obtained when the accessible pore size is <5 Å. This work suggests a new strategy to achieve tunable pore sizes via the graphene/IL composites for highly selective CO2/N2 and CO2/CH4 adsorption.

Topics & Concepts

Materials scienceGrapheneIonic liquidAdsorptionSorptionComposite numberPorosityChemical engineeringCarbon fibersIonIonic bondingGas separationComposite materialNanotechnologyPhysical chemistryOrganic chemistryMembraneBiologyEngineeringCatalysisGeneticsChemistryCarbon Dioxide Capture TechnologiesMembrane Separation and Gas TransportCovalent Organic Framework Applications
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