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Synthesis and Characterisation of ETS-10 Acetate-based Ionic

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Synthesis and Characterisation of ETS-10 Acetate-based Ionic ( synthesis-and-characterisation-ets-10-acetate-based-ionic )

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Membranes 2014, 4 299 2. Merkel, T.C.; Lin, H.; Wei, X.; Baker, R. Power plant post-combustion carbon dioxide capture: An opportunity for membranes. J. Membr. Sci. 2010, 359, 126–139. 3. Gascón, J.; Kapteijn, F.; Zornoza, B.; Sebastián, V.; Casado, C.; Coronas, J. Practical approach to zeolitic membranes and coatings: State of the art, opportunities, barriers and future perspectives. Chem. Mater. 2012, 24, 2829–2844. 4. Pera-Titus, M. Porous Inorganic Membranes for CO2 Capture: Present and Prospects. Chem. Rev. 2014, 114, 1413–1492. 5. Bernal, M.P.; Coronas, J.; Menendez, M.; Santamaría, J. On the effect of morphological features on the properties of MFI zeolite membranes. Micropor. Mesopor. Mater. 2003, 60, 99–110. 6. Jiang, L.Y.; Chung, T.S.; Kulprathipanja, S. Fabrication of mixed matrix hollow fibers with intimate polymer-zeolite interface for gas separation. AIChE J. 2006, 52, 2898–2908. 7. Hamad, F.; Khulbe, K.C.; Matsuura, T. Comparison of gas separation performance and morphology of homogeneous and composite PPO membranes. J. Membr. Sci. 2005, 256, 29–37. 8. Robeson, L.M. The upper bound revisited. J. Membr. Sci. 2008, 320, 390–400. 9. Freeman, B.D. Basis of permeability/selectivity trade-off relations in polymeric gas separation membranes. Macromolecules 1999, 32, 375–380. 10. Hudiono, Y.C.; Carlisle, T.K.; Bara, J.E.; Zhang, Y.; Gin, D.L.; Noble, R.D. A three-component mixed-matrix membrane with enhanced CO2 separation properties based on zeolites and ionic liquid materials. J. Membr. Sci. 2010, 350, 117–123. 11. Hao, L.; Li, P.; Yang, T.; Chung, T.-S. Room temperature ionic liquid/ZIF-8 mixed-matrix membranes for natural gas sweetening and post-combustion CO2 capture. J. Membr. Sci. 2013, 436, 221–231. 12. Liu, L.; Chakma, A.; Feng, X. Gas permeation through water-swollen hydrogel membranes. J. Membr. Sci. 2008, 310, 66–75. 13. Ito, A.; Sato, M.; Anma, T. Permeability of CO2 through chitosan membrane swollen by water vapor in feed gas. Angew. Makromol. Chem. 1997, 248, 85–94. 14. El-Azzami, L.A.; Grulke, E.A. Carbon dioxide separation from hydrogen and nitrogen by fixed facilitated transport in swollen chitosan membranes. J. Membr. Sci. 2008, 323, 225–234. 15. El-Azzami, L.A.; Grulke, E.A. Parametric study of CO fixed carrier facilitated transport through swollen chitosan membranes. Ind. Eng. Chem. Res. 2009, 48, 894–902. 16. Kai, T.; Kouketsu, T.; Duan, S.; Kazama, S.; Yamada, K. Development of commercial-sized dendrimer composite membrane modules for CO2 removal from flue gas. Sep. Purif. Technol. 2008, 63, 524–530. 17. Xiao, S.; Feng, X.; Huang, R.Y.M. Trimesoyl chloride crosslinked chitosan membranes for CO2/N2 separation and pervaporation dehydration of isopropanol. J. Membr. Sci. 2007, 306, 36–46. 18. Casado-Coterillo, C.; Andrés, F.; Téllez, C.; Coronas, J.; Irabien, A. Synthesis and characterization of ETS-10/chitosan nanocomposite materials for pervaporation. Sep. Sci. Technol. 2014, doi:10.1080/01496395.2014.908921. 19. Casado, C.; Amghouz, Z.; García, J.R.; Boulahya, K.; González-Calbet, J.M.; Téllez, C.; Coronas, J. Synthesis and characterization of microporous titanosilicate ETS-10 obtained with different Ti sources. Mater. Res. Bull. 2009, 44, 1225–1231.

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