Molecular simulation of phenol-containing poly(ether-block-amide) membrane for carbon dioxide separation from nitrogen

Document Type : Original Research

Authors

Department of Chemical Engineering, Faculty of Engineering, Behbahan Khatam Alanbia University of Technology, Behbahan, Iran

Abstract
Research Subject: Carbon dioxide (CO2) pollution represents a major environmental challenge in contemporary society, primarily driven by industrial expansion. A notable modern approach for CO2 separation involves the use of polymer membranes, with poly (ether-block-amide) (Pebax) recognized as a prominent industrial membrane in this field. However, this type of membrane is constrained by the permeability–selectivity trade-off, which hinders its broader application in industrial processes. One strategy to overcome this limitation is the incorporation of various functional compounds into Pebax.

Research Approach: This study selected phenol—characterized by its hydroxyl functional group—as a filler, and prepared Pebax membranes with varying phenol concentrations using advanced molecular simulation techniques. Molecular Dynamics (MD) and Grand Canonical Monte Carlo (GCMC) methods were employed to evaluate both the structural properties and gas separation performance of the membranes. Initially, structural properties—including fractional free volume (FFV), density, and polymer chain mobility—were analyzed, followed by assessments of functional properties such as diffusion and solubility coefficients.

Main Results: The incorporation of phenol led to an increase in the membranes' fractional free volume (FFV). Radial distribution function (RDF) analysis revealed that the interaction between CO2 and phenol molecules was stronger than that between CO2 and Pebax polymer chains. Furthermore, the results indicated that phenol increased the CO2 diffusion coefficient by a factor of 5.5 and the solubility coefficient by 1.3 times compared to the pure Pebax membrane, due to Lewis acid–base and π-quadrupolar interactions. Analysis of CO2 permeability and CO2/N2 selectivity in the simulated membranes showed that increasing the phenol content led to higher CO2 permeability but a continuous decrease in CO2/N2 selectivity.

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[1] Sun Q.Q., Zhu M.C., Zhu P.F., Yang Y.X., Lu Y.Z., Li N., and Chen S.W., Enhancement of CO2 separation efficiency in mixed matrix membranes through zinc ion modified g-C3N4 nanosheets, J. Appl. Polym. Sci., 141, 1–14, 2024.
[2] Norouzi A.M., Kojabad M.E., Chapalaghi M., Hosseinkhani A., nareh A.A., and Lay E.N., Polyester-based polyurethane mixed-matrix membranes incorporating carbon nanotube-titanium oxide coupled nanohybrid for carbon dioxide capture enhancement: Molecular simulation and experimental study, J. Mol. Liq., 360, 119540, 2022.
[3] Ahmadi, H. Sanaeepur, A. Ebadi Amooghin, A. Heydari, Modification of Poly(ether-b-amide) Membrane Properties Using Glycerol for CO2/N2 Gas Separation, Iran.J. Polym. Sci. Technol. (Persian), 31(5), 461-474, 2018.
[4] Ebrahimi S., Ebadi-Dehaghani H., kolahdoozan M., ameri E., Fabrication of nanocomposite membrane based on polyether block amide/polyvinyl alcohol filled with magnesium oxide nanoparticles in order to investigate selective permeability properties, App. Res. Chem. Polym. Engin., 7(3), 19-28, 2023.
[5] Sadrzadeh M., Amirilargani M., Shahidi K., and Mohammadi T., Gas permeation through a synthesized composite PDMS/PES membrane, J. Membr. Sci., 2009, 342, 236-250. https://doi.org/10.1016/j.memsci.2009.06.047.
[5] Amooghin A. E., Mashhadikhan S., Sanaeepur H., Moghadassi A., Matsuura T., and Ramakrishna S., Substantial breakthroughs on function-led design of advanced materials used in mixed matrix membranes (MMMs): A new horizon for efficient CO2 separation, Prog. Mater. Sci., 102, 222-295, 2019.
[6] Kojabad M. E., and Norouzi A., Pebax / NC-PCL membrane containing well-distributed PCL grafted biodegradable nano-chitosan particles for CO2 separation, Colloids Surfaces A Physicochem. Eng. Asp., 705, 135576, 2025. https://doi.org/10.1016/j.colsurfa.2024.135576.
[7] Kojabad M.E., Mohammadi O., and Norouzi A., PEBA/CNC-EGME mixed matrix membrane with interconnected networks for enhanced CO2 separation, Chem. Eng. Res. Des., 210, 568–578, 2024. https://doi.org/10.1016/j.cherd.2024.09.020.
[8] Meshkat S., Kaliaguine S., and Rodrigue D., Enhancing CO2 separation performance of Pebax ® MH-1657 with aromatic carboxylic acids, Sep. Purif. Technol., 212, 901–912, 2019.
[9] Kojabad M.E., Babaluo A. A., and Tavakoli A., A novel semi-mobile carrier facilitated transport membrane containing aniline/poly (ether-block-amide) for CO2/N2 separation: Molecular simulation and experimental study, Sep. Purif. Technol., 266, 118494, 2021. https://doi.org/10.1016/j.seppur.2021.118494.
[10] Kojabad M.E., Babaluo A.A., Tavakoli A., Sofla R.L.M., and Kahnamouei H.G., Comparison of acidic and basic ionic liquids effects on dispersion of alumina particles in Pebax composite membranes for CO2/N2 separation: Experimental study and molecular simulation, J. Environ. Chem. Eng., 9, 106116, 2021. https://doi.org/10.1016/J.JECE.2021.106116.
[11] Amirkhani F., Mosadegh M., Asghari M., and Javad M., The beneficial impacts of functional groups of CNT on structure and gas separation properties of PEBA mixed matrix membranes, Polym. Test., 82 , 106285, 2020.
[12] Pazirofteh M., Dehghani M., Niazi S., Mohammadi A.H., Asghari M., Molecular dynamics simulation and Monte Carlo study of transport and structural properties of PEBA 1657 and 2533 membranes modi fi ed by functionalized POSS-PEG material, J. Mol. Liq., 241, 646–653, 2017.
[13] Golzar K., Modarress H., Amjad-iranagh S., Separation of gases by using pristine , composite and nanocomposite polymeric membranes : A molecular dynamics simulation study, J. Membr. Sci., 539, 238–256, 2017.
[14] Pazirofteh M., Abdolmajidi M., Samipoorgiri M., Dehghani, M., Mohammadi, A.H., Separation and transport speci fication of a novel PEBA-1074/PEG-400/TiO2 nanocomposite membrane for light gas separation: Molecular simulation study, J. Mol. Liq., 291, 111268, 2019.
[15] Patil T., Dharaskar S., Pandya J., Shinde S., Sasi S., Sillanpaa M., Yoo C., and Sekhara T.C., International Journal of Greenhouse Gas Control Efficient CO2/CH4 separation using [Bmim][Ac]/ Pebax-1657 supported ionic liquid membranes and its prediction by density functional theory, Int. J. Greenh. Gas Control., 124, 103856, 2023.
[16] Kojabad M.E., Bekhradinassab E., and Kahnamouei H.G., Reinforced facilitated transport PEBA membrane by 2D Fe-doped TiO2 macroporous nanosheets for CO2 separation : Utilizing cationic and non-ionic surfactants, J. Environ. Chem. Eng., 12, 113963, 2024.
[17] Kojabad M.E., Amirabedi P., and Dorfeshan M., A Two-Way Facilitated Transport Membrane for CO2 Separation with Synergy of Nucleophilic Addition and Π-Complexing Reactions: Molecular Simulation and Experimental Study, Iran.J. Polym. Sci. Technol. (Persian), 36(6), 647–660, 2024. https://doi.org/10.22063/JIPST.2024.3470.2258.
[18] Mosadegh M., Amirkhani F., Riasat H., Asghari M., Effect of Nafion and APTEOS functionalization on mixed gas separation of PEBA-FAU membranes : Experimental study and MD and GCMC simulations, Sep. Purif. Technol., 247, 116981, 2020.
[19] Ling C., Liang, X., Fan, F., and Yang Z., Diffusion behavior of the model diesel components in different polymer membranes by molecular dynamic simulation, Chem. Engin. Sci., 84, 292–302, 2012.
[20] Khanmohammadi H., Bayati, B., Rahbar Shahrouzi J., Babaluo A.A., and Ghorbani A., Molecular simulation of the ion exchange behavior of Cu2+, Cd2+ and Pb2+ ions on different zeolites exchanged with sodium, J. Environ. Chem. Eng., 7, 103040, 2019. https://doi.org/10.1016/J.JECE.2019.103040.
[21] Kojabad M.E., Babaluo A.A., Tavakoli A., and Kahnamouei H.G., A novel high-performance facilitated transport membrane by simultaneously using semi-mobile and fixed carriers for CO2/N2 separation, Process Saf. Environ. Prot., 156, 304–314, 2021. https://doi.org/10.1016/J.PSEP.2021.10.017.
[22] Wang L., Li Y., Li S., Ji P., Jiang C., Preparation of composite poly(ether block amide) membrane for CO2 capture, J. Energy Chem., 23 (6), 717–725, 2014.
[23] Dehghani M., Asghari M., Mohammadi A.H., Mokhtari M., Molecular simulation and Monte Carlo study of structural-transport-properties of PEBA-MFI zeolite mixed matrix membranes for CO2 , CH4 and N2 separation, Comp. Chem. Eng., 103, 12–22, 2017.
[24] Dehghani M., Asghari M., Fauzi A., Mohammadi A.H., Molecular dynamics and Monte Carlo simulation of the structural properties , diffusion and adsorption of poly ( amide-6-b-ethylene oxide )/ Faujasite mixed matrix membranes, J. Mol. Liq., 242, 404–415, 2017.