Li, J. R., Sculley, J., & Zhou, H. C. (2011b). Metal-organic frameworks
for separations. Chemical Reviews, 112(2), 869–932.
Li, T., Pan, Y., Peinemann, K.-V., & Lai, Z. (2013). Carbon dioxide
selective mixed matrix composite membrane containing ZIF-7
nano-fillers. Journal of Membrane Science, 425–426(2013), 235–242.
Li, Y., Chung, T. S., Huang, Z., & Kulprathipanja, S. (2006).
Dual-layer polyethersulfone (PES)/BTDA-TDI/MDI co-polyimide
(P84) hollow fiber membranes with a submicron PES–zeolite beta
mixed matrix dense-selective layer for gas separation. Journal of
Membrane Science, 277, 28–37.
Liang, Z., Marshall, M., & Chaffee, A. L. (2009). Comparison of
Cu-BTC and zeolite 13X for adsorbent based CO 2 separation.
Energy Procedia, 1, 1265–1271.
Lincke, J., Lässig, D., & Moellmer, J. (2011). A novel copper-based
MOF material: Synthesis, characterization and adsorption studies.
Microporous and Mesoporous Materials, 142(1), 62–69.
Liu, S., Wang, R., Chung, T., Chng, M. L., Liu, Y., & Vora, R. H.
(2002). Effect of diamine composition on the gas transport
properties in 6FDA-durene/3, 3-diaminodiphenyl sulfone copolyimides. Journal of Membrane Science, 202, 165–176.
Mahajan, R., Burns, R., Schaeffer, M., & Koros, W. J. (2002).
Challenges in forming successful mixed matrix membranes with
rigid polymeric materials. Journal of Applied Polymer Science, 86
(4), 881–890.
Mirfendereski, S. M., Mazaheri, T., Sadrzadeh, M., & Mohammadi, T.
(2008). CO 2 and CH 4 permeation through T-type zeolite membranes: Effect of synthesis parameters and feed pressure. Separation
and Purification Technology, 61(3), 317–323.
Moghadassi, A. R., & Rajabi, Z. (2014). Fabrication and modification
of cellulose acetate based mixed matrix membrane: Gas separation
and physical properties. Journal of Industrial and Engineering
Chemistry, 20(3), 1050–1060.
Mohshim, D. F., Mukhtar, H. B., Man, Z., & Nasir, R. (2013). Latest
development on membrane fabrication for natural gas purification:
A review. Journal of Engineering, 2013, 101746.
Nafisi, V., & Hagg, M.-B. (2014). Gas separation properties of
ZIF-8/6FDA-durene diamine mixed matrix membrane. Separation
and Purification Technology, 128, 31–38.
Nik, O. G., Chen, X. Y., & Kaliaguine, S. (2011). Aminefunctionalized zeolite FAU/EMT-polyimide mixed matrix membranes for CO 2 /CH 4 separation. Journal of Membrane Science, 379,
468–478.
Nik, O. G., Chen, X. Y., & Kaliaguine, S. (2012). Functionalized metal
organic framework-polyimide mixed matrix membranes for CO 2 /
CH 4 separation. Journal of Membrane Science, 414, 48–61.
Noble, R. D. (2011). Perspectives on mixed matrix membranes.
Journal of Membrane Science, 378(1–2), 393–397.
Nordin, N. A. H. M., Ismail, A. F., Mustafa, A. B., Goh, P., Matsuura,
T., & Rana, D. (2014). Aqueous room temperature synthesis of
zeolitic imidazole framework 8 (ZIF-8) with various concentrations
of triethylamine. RSC Advances, 4(63), 33292–33300.
Nour, M., Berean, K., Balendhran, S., Ou, J. Z., Plessis, J. D.,
McSweeney, C., et al. (2013). CNT/PDMS composite membranes
for H 2 and CH 4 gas separation. International Journal of Hydrogen
Energy, 38(25), 10494–10501.
Ordoñez, M. J. C., & Balkus, K. J. (2010). Molecular sieving realized
with ZIF-8/Matrimid® mixed-matrix membranes. Journal of Membrane Science, 361(1), 28–37.
Ordoñez, M. J. C., Balkus, K. J., Ferraris, J. P., & Musselman, I. H.
(2010). Molecular sieving realized with ZIF-8/Matrimid
®
mixed-matrix membranes. Journal of Membrane Science, 361(1–
2), 28–37.
Perez, E. V., Balkus, K. J., Ferraris, J. P., & Musselman, I. H. (2009).
Mixed-matrix membranes containing MOF-5 for gas separations.
Journal of Membrane Science, 328(1-2), 165–173.
Perez, E. V., Balkus, K. J., Ferraris, J. P., & Musselman, I. H. (2014).
Metal-organic polyhedra 18 mixed-matrix membranes for gas
separation. Journal of Membrane Science, 463, 82–93.
Poshusta, J. C., Noble, R. D., & Falconer, J. L. (1999). Temperature
and pressure effects on CO 2 and CH 4 permeation through MFI
zeolite membranes. Journal of Membrane Science, 160(1), 115–
125.
Raman, N. K., & Brinker, C. J. (1995). Organic ‘Template’ approach to
molecular sieving silica membranes. Journal of Membrane Science,
105(3), 273–279.
Rezakazemi, M., Amooghin, A. E., Montazer-Rahmati, M. M., Ismail,
A. F., & Matsuura, T. (2014). State-of-the-art membrane based CO 2
separation using mixed matrix membranes (MMMs): An overview
on current status and future directions. Progress in Polymer
Science, 39(5), 817–861.
Robeson, L. M. (2008). The upper bound revisited. Journal of
Membrane Science, 320, 390–400.
Rongwong, W., Boributh, S., Assabumrungrat, S., Laosiripojana, N., &
Jiraratananon, R. (2012). Simultaneous absorption of CO 2 and H 2 S
from biogas by capillary membrane contactor. Journal of Membrane Science, 392–393, 38–47.
Samarasinghe, S. A. S. C., Chuah, C. Y., Yang, Y., & Bae, T. H.
(2018). Tailoring CO 2 /CH 4 separation properties of mixed-matrix
membranes via combined use of two- and three-dimensional
metal-organic frameworks. Journal of Membrane Science, 557,
30–37.
Schlichte, K., Kratzke, T., & Kaskel, S. (2004). Improved synthesis,
thermal stability and catalytic properties of the metal-organic
framework compound Cu 3 (BTC) 2 . Microporous and Mesoporous
Materials, 73(1), 81–88.
Scholes, C. A., Chen, G. Q., Stevens, G. W., & Kentish, S. E. (2010).
Plasticization of ultra-thin polysulfone membranes by carbon
dioxide. Journal of Membrane Science, 346(1), 208–214.
Scholz, M., Melin, T., & Wessling, M. (2013). Transforming biogas
into biomethane using membrane technology. Renewable and
Sustainable Energy Reviews, 17, 199–212.
Shahid, S., & Nijmeijer, K. (2014). High pressure gas separation
performance of mixed-matrix polymer membranes containing
mesoporous Fe(BTC). Journal of Membrane Science, 459, 33–
44.
Shekhawat, D., Luebke, D. R., & Pennline, H. W. (2003). A review of
carbon dioxide selective membranes. DOE/NETL-2003/1200.
Pittsburgh, PA, and Morgantown, WV (United States).
Song, Q., Nataraj, S. K., & Roussenova, M. V. (2012a). Zeolitic
imidazolate framework (ZIF-8) based polymer nanocomposite
membranes for gas separation. Energy & Environmental Science,
5, 8359–8369.
Song, Q., Nataraj, S. K., Roussenova, M. V., Tan, J.-C., Hughes, D. J.,
Li, W., et al. (2012b). Zeolitic imidazolate framework (ZIF-8) based
polymer nanocomposite membranes for gas separation. Energy &
Environmental Science, 5(8), 8359.
Sridhar, S., Aminabhavi, T. M., & Ramakrishna, M. (2007a).
Separation of binary mixtures of carbon dioxide and methane
through sulfonated polycarbonate membranes. Journal of Applied
Polymer Science, 105(4), 1749–1756.
Sridhar, S., Smitha, B., & Aminabhavi, T. M. (2007b). Separation of
carbon dioxide from natural gas mixtures through polymeric
membranes—A review. Separation and Purification Reviews, 36
(2), 113–174.
Stern, S. A. (1994). Polymers for gas separations: The next decade.
Journal of Membrane Science, 94(1), 1–65.
Sun, Q., Li, H., Yan, J., Liu, L., Yu, Z., & Yu, X. (2015). Selection of
appropriate biogas upgrading technology—A review of biogas
cleaning, upgrading and utilisation. Renewable and Sustainable
Energy Reviews, 51, 521–532.
High Performance Membrane for Natural Gas Sweetening Plants
71
for separations. Chemical Reviews, 112(2), 869–932.
Li, T., Pan, Y., Peinemann, K.-V., & Lai, Z. (2013). Carbon dioxide
selective mixed matrix composite membrane containing ZIF-7
nano-fillers. Journal of Membrane Science, 425–426(2013), 235–242.
Li, Y., Chung, T. S., Huang, Z., & Kulprathipanja, S. (2006).
Dual-layer polyethersulfone (PES)/BTDA-TDI/MDI co-polyimide
(P84) hollow fiber membranes with a submicron PES–zeolite beta
mixed matrix dense-selective layer for gas separation. Journal of
Membrane Science, 277, 28–37.
Liang, Z., Marshall, M., & Chaffee, A. L. (2009). Comparison of
Cu-BTC and zeolite 13X for adsorbent based CO 2 separation.
Energy Procedia, 1, 1265–1271.
Lincke, J., Lässig, D., & Moellmer, J. (2011). A novel copper-based
MOF material: Synthesis, characterization and adsorption studies.
Microporous and Mesoporous Materials, 142(1), 62–69.
Liu, S., Wang, R., Chung, T., Chng, M. L., Liu, Y., & Vora, R. H.
(2002). Effect of diamine composition on the gas transport
properties in 6FDA-durene/3, 3-diaminodiphenyl sulfone copolyimides. Journal of Membrane Science, 202, 165–176.
Mahajan, R., Burns, R., Schaeffer, M., & Koros, W. J. (2002).
Challenges in forming successful mixed matrix membranes with
rigid polymeric materials. Journal of Applied Polymer Science, 86
(4), 881–890.
Mirfendereski, S. M., Mazaheri, T., Sadrzadeh, M., & Mohammadi, T.
(2008). CO 2 and CH 4 permeation through T-type zeolite membranes: Effect of synthesis parameters and feed pressure. Separation
and Purification Technology, 61(3), 317–323.
Moghadassi, A. R., & Rajabi, Z. (2014). Fabrication and modification
of cellulose acetate based mixed matrix membrane: Gas separation
and physical properties. Journal of Industrial and Engineering
Chemistry, 20(3), 1050–1060.
Mohshim, D. F., Mukhtar, H. B., Man, Z., & Nasir, R. (2013). Latest
development on membrane fabrication for natural gas purification:
A review. Journal of Engineering, 2013, 101746.
Nafisi, V., & Hagg, M.-B. (2014). Gas separation properties of
ZIF-8/6FDA-durene diamine mixed matrix membrane. Separation
and Purification Technology, 128, 31–38.
Nik, O. G., Chen, X. Y., & Kaliaguine, S. (2011). Aminefunctionalized zeolite FAU/EMT-polyimide mixed matrix membranes for CO 2 /CH 4 separation. Journal of Membrane Science, 379,
468–478.
Nik, O. G., Chen, X. Y., & Kaliaguine, S. (2012). Functionalized metal
organic framework-polyimide mixed matrix membranes for CO 2 /
CH 4 separation. Journal of Membrane Science, 414, 48–61.
Noble, R. D. (2011). Perspectives on mixed matrix membranes.
Journal of Membrane Science, 378(1–2), 393–397.
Nordin, N. A. H. M., Ismail, A. F., Mustafa, A. B., Goh, P., Matsuura,
T., & Rana, D. (2014). Aqueous room temperature synthesis of
zeolitic imidazole framework 8 (ZIF-8) with various concentrations
of triethylamine. RSC Advances, 4(63), 33292–33300.
Nour, M., Berean, K., Balendhran, S., Ou, J. Z., Plessis, J. D.,
McSweeney, C., et al. (2013). CNT/PDMS composite membranes
for H 2 and CH 4 gas separation. International Journal of Hydrogen
Energy, 38(25), 10494–10501.
Ordoñez, M. J. C., & Balkus, K. J. (2010). Molecular sieving realized
with ZIF-8/Matrimid® mixed-matrix membranes. Journal of Membrane Science, 361(1), 28–37.
Ordoñez, M. J. C., Balkus, K. J., Ferraris, J. P., & Musselman, I. H.
(2010). Molecular sieving realized with ZIF-8/Matrimid
®
mixed-matrix membranes. Journal of Membrane Science, 361(1–
2), 28–37.
Perez, E. V., Balkus, K. J., Ferraris, J. P., & Musselman, I. H. (2009).
Mixed-matrix membranes containing MOF-5 for gas separations.
Journal of Membrane Science, 328(1-2), 165–173.
Perez, E. V., Balkus, K. J., Ferraris, J. P., & Musselman, I. H. (2014).
Metal-organic polyhedra 18 mixed-matrix membranes for gas
separation. Journal of Membrane Science, 463, 82–93.
Poshusta, J. C., Noble, R. D., & Falconer, J. L. (1999). Temperature
and pressure effects on CO 2 and CH 4 permeation through MFI
zeolite membranes. Journal of Membrane Science, 160(1), 115–
125.
Raman, N. K., & Brinker, C. J. (1995). Organic ‘Template’ approach to
molecular sieving silica membranes. Journal of Membrane Science,
105(3), 273–279.
Rezakazemi, M., Amooghin, A. E., Montazer-Rahmati, M. M., Ismail,
A. F., & Matsuura, T. (2014). State-of-the-art membrane based CO 2
separation using mixed matrix membranes (MMMs): An overview
on current status and future directions. Progress in Polymer
Science, 39(5), 817–861.
Robeson, L. M. (2008). The upper bound revisited. Journal of
Membrane Science, 320, 390–400.
Rongwong, W., Boributh, S., Assabumrungrat, S., Laosiripojana, N., &
Jiraratananon, R. (2012). Simultaneous absorption of CO 2 and H 2 S
from biogas by capillary membrane contactor. Journal of Membrane Science, 392–393, 38–47.
Samarasinghe, S. A. S. C., Chuah, C. Y., Yang, Y., & Bae, T. H.
(2018). Tailoring CO 2 /CH 4 separation properties of mixed-matrix
membranes via combined use of two- and three-dimensional
metal-organic frameworks. Journal of Membrane Science, 557,
30–37.
Schlichte, K., Kratzke, T., & Kaskel, S. (2004). Improved synthesis,
thermal stability and catalytic properties of the metal-organic
framework compound Cu 3 (BTC) 2 . Microporous and Mesoporous
Materials, 73(1), 81–88.
Scholes, C. A., Chen, G. Q., Stevens, G. W., & Kentish, S. E. (2010).
Plasticization of ultra-thin polysulfone membranes by carbon
dioxide. Journal of Membrane Science, 346(1), 208–214.
Scholz, M., Melin, T., & Wessling, M. (2013). Transforming biogas
into biomethane using membrane technology. Renewable and
Sustainable Energy Reviews, 17, 199–212.
Shahid, S., & Nijmeijer, K. (2014). High pressure gas separation
performance of mixed-matrix polymer membranes containing
mesoporous Fe(BTC). Journal of Membrane Science, 459, 33–
44.
Shekhawat, D., Luebke, D. R., & Pennline, H. W. (2003). A review of
carbon dioxide selective membranes. DOE/NETL-2003/1200.
Pittsburgh, PA, and Morgantown, WV (United States).
Song, Q., Nataraj, S. K., & Roussenova, M. V. (2012a). Zeolitic
imidazolate framework (ZIF-8) based polymer nanocomposite
membranes for gas separation. Energy & Environmental Science,
5, 8359–8369.
Song, Q., Nataraj, S. K., Roussenova, M. V., Tan, J.-C., Hughes, D. J.,
Li, W., et al. (2012b). Zeolitic imidazolate framework (ZIF-8) based
polymer nanocomposite membranes for gas separation. Energy &
Environmental Science, 5(8), 8359.
Sridhar, S., Aminabhavi, T. M., & Ramakrishna, M. (2007a).
Separation of binary mixtures of carbon dioxide and methane
through sulfonated polycarbonate membranes. Journal of Applied
Polymer Science, 105(4), 1749–1756.
Sridhar, S., Smitha, B., & Aminabhavi, T. M. (2007b). Separation of
carbon dioxide from natural gas mixtures through polymeric
membranes—A review. Separation and Purification Reviews, 36
(2), 113–174.
Stern, S. A. (1994). Polymers for gas separations: The next decade.
Journal of Membrane Science, 94(1), 1–65.
Sun, Q., Li, H., Yan, J., Liu, L., Yu, Z., & Yu, X. (2015). Selection of
appropriate biogas upgrading technology—A review of biogas
cleaning, upgrading and utilisation. Renewable and Sustainable
Energy Reviews, 51, 521–532.
High Performance Membrane for Natural Gas Sweetening Plants
71
