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Original Articles

Comparison Between Polydimethylsiloxane and Polyimide-Based Solvent-Resistant Nanofiltration Membranes

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References

  • Bhanushali, D., Kloos, S., Kurth, C., and Bhattacharyya, D. (2001). Performance of solvent-resistant membranes for non-aqueous systems: solvent permeation results and modeling, J. Membr. Sci., 189(1), 1–21.
  • Buonomenna, M. G., Golemme, G., Jansen, J. C., and Choi, S. H. (2011). Asymmetric PEEKWC membranes for treatment of organic solvent solutions, J. Membr. Sci., 368(1–2), 144–149.
  • Darvishmanesh, S., Degrève, J., and Van der Bruggen, B. (2010a). Physicochemical characterization of transport in nanosized membrane structures, ChemPhysChem, 11(2), 404–411.
  • Darvishmanesh, S., Degrève, J., and Van der Bruggen, B. (2010b). Mechanisms of solute rejection in solvent resistant nanofiltration: The effect of solvent on solute rejection, Phys. Chem. Chem. Phys., 12(40), 13333–13342.
  • Darvishmanesh, S., Vanneste, J., Tocci, E., Jansen, J. C., Tasselli, F., Degreve, J., Drioli, E., and Van der Bruggen, B. (2011). Physicochemical characterization of solute retention in solvent resistant nanofiltration: The effect of solute size, polarity, dipole moment, and solubility parameter, J. Phys. Chem. B., 115(49), 14507–14517.
  • Dobrak-Van Berlo, A., Vankelecom, I. F. J., and Van der Bruggen, B. (2011). Parameters determining transport mechanisms through unfilled and silicalite filled PDMS-based membranes and dense PI membranes in solvent resistant nanofiltration: Comparison with pervaporation, J. Membr. Sci., 374(1–2), 138–149.
  • Dobrak, A., Verrecht, B., Van den Dungen, H., Buekenhoudt, A., Vankelecom, I. F. J., and Van der Bruggen, B. (2010). Solvent flux behavior and rejection characteristics of hydrophilic and hydrophobic mesoporous and microporous TiO2 and ZrO2 membranes, J. Membr. Sci., 346(2), 344–352.
  • García, A., Álvarez, S., Riera, F., Álvarez, R., and Coca, J. (2005). Water and hexane permeate flux through organic and ceramic membranes: Effect of pretreatment on hexane permeate flux, J. Membr. Sci., 253(1–2), 139–147.
  • García, A., Álvarez, S., Riera, F., Álvarez, R., and Coca, J. (2006). Sunflower oil miscella degumming with polyethersulfone membranes: Effect of process conditions and MWCO on fluxes and rejections, J. Food Eng., 74(4), 516–522.
  • Geens, J., Hillen, A., Bettens, B., Van der Bruggen, B., and Vandecasteele, C. (2005a). Solute transport in non-aqueous nanofiltration: Effect of membrane material, J. Chem. Technol. Biotechnol., 80(12), 1371–1377.
  • Geens, J., Peeters, K., Van der Bruggen, B., and Vandecasteele, C. (2005b). Polymeric nanofiltration of binary water–alcohol mixtures: Influence of feed composition and membrane properties on permeability and rejection, J. Membr. Sci., 255(1–2), 255–264.
  • Guillen, G. R., Pan, Y., Li, M., and Eric, M. V., H. (2011). Preparation and characterization of membranes formed by nonsolvent induced phase separation: A review. Ind. Eng. Chem. Res., 50, 3798–3817.
  • Guizard, C., Ayral, A., and Julbe, A. (2002). Potentiality of organic solvents filtration with ceramic membranes: A comparison with polymer membranes, Desalination, 147(1–3), 275–280.
  • Han, S., Wong, H.-T., and Livingston, A. G. (2005). Application of organic solvent nanofiltration to separation of ionic liquids and products from ionic liquid mediated reactions, Chem. Eng. Res. Des., 83(3), 309–316.
  • Han, S. J., Luthra, S. S., Peeva, L., Yang, X. J., and Livingston, A. G. (2003). Insights into the transport of toluene and phenol through organic solvent nanofiltration membranes, Sep. Purif. Technol., 38(9), 1899–1923.
  • Li, X., De Feyter, S., and Vankelecom, I. F. J. (2008). Poly (sulfone)/sulfonated poly (ether ether ketone) blend membranes: Morphology study and application in the filtration of alcohol based feeds, J. Membr. Sci., 324(1–2), 67–75.
  • Machado, D. R., Hasson, D., and Semiat, R. (1999). Effect of solvent properties on permeate flow through nanofiltration membranes. Part I: Investigation of parameters affecting solvent flux, J. Membr. Sci., 163(1), 93–102.
  • Machado, D. R., Hasson, D., and Semiat, R. (2000). Effect of solvent properties on permeate flow through nanofiltration membranes: Part II. Transport model, J. Membr. Sci., 166(1), 63–69.
  • Miyagi, A., Nabetani, H., and Nakajima, M. (2012). Analysis of transport mechanism of binary organic solvent system through a PDMS-based dense membrane using a regular solution model combined with a solution-diffusion model, Sep. Purif. Technol., 88, 216–226.
  • Nair, D., Scarpello, J. T., Vankelecom, I. F. J., Santos, L. M. F. D., White, L. S., Kloetzing, R. J., Welton, T., and Livingston, A. G. (2002). Increased catalytic productivity for nanofiltration-coupled Heck reactions using highly stable catalyst systems, Green Chem., 4(4), 319–324.
  • Peeva, L. G., Gibbins, E., Luthra, S. S., White, L. S., Stateva, R. P., and Livingston, A. G. (2004). Effect of concentration polarisation and osmotic pressure on flux in organic solvent nanofiltration, J. Membr. Sci., 236(1–2), 121–136.
  • Robinson, J. P., Tarleton, E. S., Millington, C. R., and Nijmeijer, A. (2004a). Solvent flux through dense polymeric nanofiltration membranes, J. Membr. Sci., 230(1–2), 29–37.
  • Robinson, J. P., Tarleton, E. S., Millington, C. R., and Nijmeijer, A. (2004b). Nanofiltration of organic solvents, Membr. Technol., 2004(7), 5–12.
  • Santos, J. L. C., Hidalgo, A. M., Oliveira, R., Velizarov, S., and Crespo, J. G. (2007). Analysis of solvent flux through nanofiltration membranes by mechanistic, chemometric and hybrid modelling, J. Membr. Sci., 300, 191–204.
  • Schmidt, P., Kose, T., and Lutze, P. (2013). Characterisation of organic solvent nanofiltration membranes in multi-component mixtures: Membrane rejection maps and membrane selectivity maps for conceptual process design, J. Membr. Sci., 429, 103–120.
  • Silva, P., Han, S., and Livingston, A. G. (2005). Solvent transport in organic solvent nanofiltration membranes, J. Membr. Sci., 262(1–2), 49–59.
  • Smallwood, I. M. (1996). Handbook of Organic Solvent Properties, Butterworth-Heinemann, Oxford.
  • Soroko, I., Sairam, M., and Livingston, A. G. (2011). The effect of membrane formation parameters on performance of polyimide membranes for organic solvent nanofiltration (OSN). Part C. Effect of polyimide characteristics, J. Membr. Sci., 381, 172–182.
  • Stafie, N., Stamatialis, D. F., and Wessling, M. (2004). Insight into the transport of hexane–solute systems through tailor-made composite membranes, J. Membr. Sci., 228(1), 103–116.
  • Su, B., Wang, Z., Wang, J., and Wang, S. (2005). Concentration of clindamycin phosphate aqueous ethanol solution by nanofiltration, J. Membr. Sci., 251(1–2), 189–200.
  • Toh, Y. H. S., Loh, X. X., Li, K., Bismarck, A., and Livingston, A. G. (2007). In search of a standard method for the characterisation of organic solvent nanofiltration membranes, J. Membr. Sci., 291, 120–125.
  • Tsui, E. M., and Cheryan, M. (2004). Characteristics of nanofiltration membranes in aqueous ethanol, J. Membr. Sci., 237(1–2), 61–69.
  • Tsuru, T., Sudoh, T., Yoshioka, T., and Asaeda, M. (2001). Nanofiltration in non-aqueous solutions by porous silica–zirconia membranes, J. Membr. Sci., 185(2), 253–261.
  • Van der Bruggen, B., Geens, J., and Vandecasteele, C. (2002a). Influence of organic solvents on the performance of polymeric nanofiltration membranes, Sep. Sci. Technol., 37(4), 783–797.
  • Van der Bruggen, B., Geens, J., and Vandecasteele, C. (2002b). Fluxes and rejections for nanofiltration with solvent stable polymeric membranes in water, ethanol and n-hexane, Chem. Eng. Sci., 57, 2511–2518.
  • Van der Bruggen, B., Jansen, J. C., Figoli, A., Geens, J., Van Baelen, D., Drioli, E., and Vandecasteele, C. (2004). Determination of parameters affecting transport in polymeric membranes: Parallels between pervaporation and nanofiltration, J. Phys. Chem. B., 108(35), 13273–13279.
  • Vandezande, P., Gevers, L. E. M., Paul, J. S., Vankelecom, I. F. J., and Jacobs, P. A. (2005). High throughput screening for rapid development of membranes and membrane process, J. Membr. Sci., 250(1–2), 305–310.
  • Vandezande, P., Gevers, L. E. M., and Vankelecom, I. F. J. (2008). Solvent resistant nanofiltration: separating on a molecular level, Chem. Soc. Rev., 37(2), 365–405.
  • Vanherck, K., Vandezande, P., Aldea, S. O., and Vankelecom, I. F. J. (2008). Cross-linked polyimide membranes for solvent resistant nanofiltration in aprotic solvents, J. Membr. Sci., 320(1–2), 468–476.
  • Vanherck, K., Cano-Odena, A., Koeckelberghs, G., Dedroog, T., and Vankelecom, I. (2010). A simplified diamine crosslinking method for PI nanofiltration membranes, J. Membr. Sci., 353(1–2), 135–143.
  • Vankelecom, I. F. J., Smet, K. D., Gevers, L. E. M., Livingston, A., Nair, D., Aerts, S., Kuypers, S., and Jacobs, P. A. (2004). Physico-chemical interpretation od the SNRF transport mechanism for solvents through dense silicone membranes, J. Membr. Sci., 231(1–2), 99–108.
  • Volkov, A., Yushkin, A., Kachula, Y., Khotimsky, V., and Volkov, V. (2014). Application of negative retention in organic solvent nanofiltration for solutes fractionation, Sep. Sci. Technol., 124, 43–48.
  • White, L. S., and Nitsch, A. R. (2000). Solvent recovery from lube oil filtrates with a polyimide membrane, J. Membr. Sci., 179(1–2), 267–274.
  • Whu, J. A., Baltzis, B. C., and Sirkar, K. K. (2000). Nanofiltration studies of larger organic microsolutes in methanol solutions, J. Membr. Sci., 170(2), 159–172.
  • Yang, X. J., Livingston, A. G., and Freitas dos Santos, L. (2001). Experimental observations of nanofiltration with organic solvents, J. Membr. Sci., 190(1), 45–55.
  • Zeidler, S., Katzel, U., and Kreis, P. (2013). Systematic investigation on the influence of solutes on the separation behavior of a PDMS membrane in organic solvent nanofiltration, J. Membr. Sci., 429, 295–303.
  • Zhao, Y., and Yuan, Q. (2006). Effect of membrane pretreatment on performance of solvent resistant nanofiltration membranes in methanol solutions, J. Membr. Sci., 280(1–2), 195–201.

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