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April 21, 2026Journal of the Taiwan Institute of Chemical Engineers2 citationsOpen Access

High-performance EMIMTf₂N-grafted silica/polysulfone hybrid membranes for enhanced CO₂/CH₄ separation: An experimental and computational approach

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MDMehtab Ali DarbanUniversiti Teknologi PetronasSLSerene Sow Mun LockWHWaqar HussainUniversiti Teknologi Petronas

Key Points

  • The aim is to develop hybrid membranes with enhanced CO₂/CH₄ separation capabilities using grafted ionic liquids.
  • Developed hybrid membranes with 5-20 wt.% ionic liquid-grafted silica via a grafting strategy.
  • Conducted molecular dynamics simulations to analyze gas transport mechanisms and interactions.
  • Measured CO₂ permeability and CH₄ selectivity improvements over neat polysulfone membranes.
  • At 10 wt.% IL-silica, the membrane reached 25 Barrer CO₂ permeability and 37 selectivity, improving by 246% and 208%, respectively.
  • Compared to non-modified silica/polysulfone, improvements were 140% in permeability and 40% in selectivity.
  • Strong agreement between experimental findings and MD simulations was observed, with a deviation of less than 10%.

Abstract

• EMIMTf₂N-grafted silica/PSF hybrid membranes were developed for CO₂/CH₄ separation. • IL grafting improved filler dispersion, polymer compatibility, and thermal stability. • 10 wt.% IL-silica membrane achieved 246% higher CO₂ permeability and 208% higher selectivity. • MD simulations confirmed Tf₂N⁻ enhances CO₂ affinity, while EMIM⁺ strengthens interfacial bonding. • Strong experimental-simulation agreement (≤10% deviation) validated the membrane design. Mixed matrix membranes (MMMs) containing three components consisting of a polymeric continuous phase, a solid inorganic material, and an ionic liquid are widely explored for CO₂ removal from natural gas to increase energy content, reduce corrosion, and enable safer utilization. However, most of the previous studies have relied on physically blended or impregnated ionic liquids (ILs), which suffer from leaching and membrane instability, ultimately limiting their separation performance. Moreover, experimental methods alone cannot fully explain gas transport mechanisms or interactions between polymers, fillers, and gases with sorption sites. This work employs a grafting strategy to covalently support 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide (EMIMTf₂N) onto silica surface (IL-Si), ensuring long-term stability, uniform dispersion, improved compatibility between polymer and filler, and enhanced gas separation performance. Hybrid membranes with filler contents ranging from 5 to 20 wt.% were experimentally fabricated and analysed from an atomistic perspective using molecular dynamics (MD) simulations. The IL-functionalized filler enhanced interfacial adhesion, as evidenced by increased thermal stability with delayed degradation and improved glass transition temperature (T g ) from 181.5 to 189.46 °C, reflecting stronger polymer-filler interactions. At 10 wt.% IL-Si, the membrane achieved a CO₂ permeability of 25 Barrer and CO₂/CH₄ selectivity of 37, representing 246% and 208% improvements over neat polysulfone (PSF). Compared to non-modified silica/PSF, the permeability and selectivity improved by 140% and 40%, respectively. MD simulations, with <10% deviation, confirmed Tf₂N⁻ anions enhance CO₂ sorption while EMIM⁺ cations strengthen filler dispersion and compatibility. Based on this, future work needs to focus on testing functionalized ILs, scaling up fabrication, assessing long-term stability under harsh conditions, and expanding membrane studies to other relevant gas pairs.

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Cite This Study

Darban et al. (2026) studied this question.

synapsesocial.com/papers/69e7138bcb99343efc98cfbahttps://doi.org/10.1016/j.jtice.2026.106767
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