1.
Sing KSW, Everett DH, Haul RAW, Moscou L, Pierotti RA, Rouquérol J, Siemieniewska T (1985) Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity. Pure Appl Chem 57:603–619
2.
Rouquerol JJ, Avnir D, Fairbridge CW, Everett DH, Haynes JM, Pernicone N, Ramsay JDF, Sing KSW, Unger KK (1994) Recommendations for the characterization of porous solids (Technical Report). Pure Appl Chem 66:1739–1758
3.
Robeson LM (1991) Correlation of separation factor versus permeability for polymeric membranes. J Membr Sci 62:165–185
4.
Aoki T (1999) Macromolecular design of permselective membranes. Prog Polym Sci 24:951–993
5.
Schmeling N, Konietzny R, Sieffert D, Rölling P, Staudt C (2010) Functionalized copolyimide membranes for gaseous and liquid mixtures. Beiltein J Org Chem 6:789–800
6.
Budd PM, McKeown NB (2010) High permeable polymers for gas separation membranes. Polym Chem 1:63–68
7.
Powell CE, Qiao GG (2006) Polymeric CO
2/N
2 gas separation membranes for the capture of carbon dioxide from power plant flue gases. J Membr Sci 279:1–49
8.
Gantzel PK, Merten U (1970) Gas separations with high flux cellulose acetate membranes. Ind Eng Chem Process Des Dev 9:331–332
9.
Nunes SP, Pinemann K-V (2001) Membrane materials and membrane preparation. In: Nunes SP, Pinemann K-V (eds) Membrane technology in chemical industry. Wiley-VCH, Weinheim, FRG, pp 1–67
10.
Bernardo P, Drioli E, Golemme G (2009) Membrane gas separation: a review/state of the art. Ind Eng Chem Res 48:4638–4663
11.
Reddy BSR, Senthilkumar U (2003) Prospects of siloxane membrane technology for gas separation—a review. J Sci Ind Res 62:666–677
12.
Achalpurkar MP, Kharul UK, Lohokare HR, Karadkar PB (2007) Gas permeation in amine functionalized silicon rubber membranes. Sep Purif Technol 57:304–313
13.
Stern SA, Shah VM, Hardy BJ (1987) Structure-permeability relationships in silicone polymers. J Polym Sci 25:1263–1298
14.
Furuzono T, Seki K, Kishida A, Ohshige T-A, Waki K, Maruyama I, Akashi M (1996) Novel functional polymers: poly(dimethylsiloxane)-polyamide multiblock copolymer. III. Synthesis and surface properties of disiloxane-aromatic polyamide multiblock copolymer. J Appl Polym Sci 59:1059–1065
15.
Loeb S, Sourirajan S (1960) Sea water demineralization by means of a semipermeable membrane. Sea Water Research Report 60-60. UCLA, Department of Engineering
16.
Dortmundt D, Doshi K (1999) Recent developments in CO
2 removal membrane technology. UOP LLC, Des Plaines, IL
17.
White L (2010) Evolution of natural gas treatment with membrane systems. In: Yampolskii Y, Freeman B (eds) Membrane gas separation. John Wiley & Sons, Ltd, Chichester, UK
18.
Puleo AC, Paul DR, Kelley SS (1989) The effect of degree of acetylation on gas sorption and transport behaviour in cellulose acetate. J Membr Sci 47:301–332
19.
Scholes CA, Stevens GW, Kentish SE (2012) Membrane gas separation applications in natural gas processing. Fuel 96:15–28
20.
Minhas BS, Matsuura T, Sourirajan S (1987) Formation of asymmetric cellulose acetate membranes for the separation of carbon dioxide–methane gas mixtures. Ind Eng Chem Res 26:2344–2348
21.
Houde AY, Krishnakumar B, Charati SG, Stern SA (1996) Permeability of dense (homogeneous) cellulose acetate membranes to methane, carbon dioxide, and their mixtures at elevated pressures. J Appl Polym Sci 62:2181–2192
22.
Donohue MD, Minhas BS, Lee SY (1989) Permeation behaviour of carbon dioxide–methane mixtures in cellulose acetate membranes. J Membr Sci 42:197–214
23.
Houde AY, Stern SA (1997) Solubility and diffusivity of light gases in ethyl cellulose at elevated pressures: effects of ethoxy content. J Membr Sci 127:171–183
24.
Park J, Steward MG (1968) Film-forming cellulose compounds. British Patent 1120373A, 17 June 1968
25.
Cooley TE, Coady AB (1978) Removal of H
2S and/or CO
2 from a light hydrocarbon stream by use of gas permeable membrane. US Patent 4130403A, 19 Dec 1978
26.
Sharma AK (1985) Fluorinated cellulose acetate polymers. US Patent 4549012A, 22 Oct 1985
27.
Rahman SA, Ismail AF, Abdul-Rahman WAW (2001) Formation of cellulose acetate membrane for gas separation from binary dope system: effect of shear rate. Paper presented at Regional Symposium on Membrane Science and Technology, Puteri Pan Pacific Hotel, Johor Bharu, Malaysia, 21–25 Apr 2004
28.
Vorotyntsev IV, Drozdov PN, Karyakin NV (2006) Ammonia permeability of a cellulose acetate membrane. Inorg Mater 42:231–235
29.
Tanioka A, Ishikawa K, Kakuta A, Kuramoto M, Ohno M (1984) Mixed gas separation by fine porous freeze-dried cellulose acetate membrane. J Appl Polym Sci 29:583–594
30.
Kim W, Lee JS, Bucknall DG, Koros WJ, Nair S (2013) Nanoporous layered silicate AMH-3/cellulose acetate nanocomposite membranes for gas separations. J Membr Sci 441:129–136
31.
Scholes CA, Kentish SE, Stevens GW (2008) Separation through polymeric membrane systems for flue gas applications. Recent patents on chemical engineering 1:52–66
32.
Ward WJ, Browall WR, Salemme RM (1976) Ultrathin silicon/polycarbonate membranes for gas separation processes. J Membr Sci 1:99–108
33.
Acharya NK, Yadav PK, Vijay YK (2004) Study of temperature dependent gas permeability of polycarbonate membrane. Ind J Pure Appl Phys 43:179–181
34.
Vijay YK, Acharya NK, Wate S, Avasthi DK (2004) Characterization of track etched membrane by gas separation. Int J Hydrogen Energy 29:515–519
35.
Fu YJ, Chen JT, Chen CC, Liao KS, Hu CC, Lee KR, Lai JY (2013) Characterization of morphology and gas separation performance of dry-cast polycarbonate membranes. Polym Eng Sci 53:1623–1630
36.
Hacarlioglu P, Toppare L, Yilmaz L (2003) Polycarbonate-polypyrrole mixed matrix gas separation membranes. J Membr Sci 225:51–62
37.
Sen D, Kalipecilar H, Yilmaz L (2006) Development of zeolite filled polycarbonate mixed matrix gas separation membranes. Desalination 200:222–224
38.
López-González M, Saiz E, Guzmán J, Riande E (2001) Experimental and simulation studies on the transport of gaseous diatomic molecules in polycarbonate membranes. J Chem Phys 115:6728–6736
39.
Yampol’skii YP, Bespalova NB, Finkel’shtein ES, Bondar VI, Papov AV (1994) Synthesis, gas permeability, and gas sorption properties of fluorine-containing norbornene polymers. Macromolecules 27:2872–2878
40.
Tetsuka H, Hagiwara M, Kaita S (2011) Addition-type poly(norbornene)s with siloxane substituents: synthesis, properties and nanoporous membrane. Polym J 43:97–100
41.
Tetsuka H, Isobe K, Hagiwara M (2009) Synthesis and properties of addition-type poly(norbone)s with siloxane substituents. Polym J 41:643–649
42.
Dorkenoo KD, Pfrommm PH, Rezac ME (1998) Gas transport properties of a series of high
T
g polynorbornenes with aliphatic pendant groups. Polym Sci B Polym Phys 36:797–803
43.
Deniz S (2006) Effect of nonsolvent type on the surface morphology and preparation of microporous membranes from blends of poly(phenylene oxide) and poly(p-phenylene oxide sulfone) or polysulfone. Desalination 200:52–54
44.
Paul DR, Yampoliskii Y (eds) (1994) Polymer gas separation membranes. CRC Press, Boca Raton, FL
45.
Khulbe KC, Matsuura T, Lamarche G, Kim HJ (1997) The morphology characterization and performance of dense PPO membranes for gas separation. J Membr Sci 135:211–223
46.
Hamad F, Matsuura T (2005) Performance of gas separation membranes made from brominated high molecular weight poly(2,4-dimethyl-1,6-phenylene oxide). J Membr Sci 253:183–189
47.
Khulbe KC, Chowdhury G, Kruczek B, Vujosevic R, Matsuura T, Lamarche G (1997) Characterization of the PPO dense membrane prepared at different temperatures by ESR, atomic force microscope and gas permeation. J Membr Sci 126:115–122
48.
Hamad F, Khulbe KC, Matsuura T (2002) Characterization of gas separation membranes prepared from brominated poly(phenylene oxide) by infrared spectroscopy. Desalination 148:369–375
49.
Yu B, Cong H, Zhao X (2012) Hybrid brominated sulfonated poly(2,6-diphenyl-1,4-phenylene oxide) and SiO
2 nanocomposite membranes for CO
2/N
2 separation. Prog Nat Sci Mater Int 22:661–667
50.
Langsam M (1996) Polyimides for gas separation. In: Ghosh MK, Mittal KL (eds) Polyimides: fundamental and application. Mercel Dekker, New York
51.
Yoon JC, Park HB (2011) Gas separation properties of triptycene-based polyimide membranes. In: Escobar IC, Bruggen BV (eds) Modern applications in membrane science and technology. ACS symposium series, vol 1078. Oxford, Washington, DC; American Chemical Society, New York, pp 107–128
52.
Kim KJ, Park SH, So WW, Ahn DJ, Moon SJ (2003) CO
2 separation performances of composite membranes of 6FDA-based polyimides with a polar group. J Membr Sci 211:41–49
53.
Li DF, Chung TS, Wang R, Liu Y (2002) Fabrication of fluoropolyimide/polyethersulfone (PES) dual-layer asymmetric hollow fiber membranes for gas separation. J Membr Sci 198:211–223
54.
Tin PS, Chung TS, Liu Y, Wang R, Liu SL, Pramoda KP (2003) Effects of cross-linking modification of Matrimid membranes. J Membr Sci 225:77–90
55.
Kapantaidakis GC, Koops GH, Wessling M, Kaldis SP, Sakellaropoulos GP (2003) CO
2 plasticization of polyethersulfone/polyimide gas-separation membranes. AIChE J 49:1702–1711
56.
Bos A, Punt I, Wessling M, Strathmann H (1998) Suppression of CO
2-plasticization by semi interpenetrating polymer network formation. J Polym Sci B Polym Phys 36:1547–1556
57.
Faiz R, Li K (2012) Polymeric membranes for light olefin/paraffin separation. Desalination 287:82–97
58.
Dong G, Li H, Chen V (2010) Factors affect defect-free Matrimid
® hollow fiber gas separation performance in natural gas purification. J Membr Sci 353:17–27
59.
Peng N, Chung TS (2008) The effects of spinneret dimension and hollow fiber dimension on gas separation performance of ultra-thin defect-free Torlon
® hollow fiber membrane. J Membr Sci 310:455–465
60.
Chung TS, Shao L, Tin PS (2006) Surface modification of polyimide membranes by diamines for H
2 and CO
2 separation. Macromol Rapid Commun 27:998–1003
61.
Liu Y, Wang R, Chung TS (2001) Chemical cross-linking modification of polyimide films for gas separation. J Membr Sci 189:231–239
62.
Wang L, Cao Y, Zhou M, Qiu X, Yuan Q (2009) Synthesis, characterization, and gas permeation properties of 6FDA-2,6-DAT/mPDA copolyimides. Front Chem Chin 4:215–221
63.
Barsema JN, Kapantaidakis GC, van der Vegt NFA, Koops GH, Wessling M (2003) Preparation and characterization of highly selective dense and hollow fiber asymmetric membranes based on BTDA-TDI/MDI co-polyimide. J Membr Sci 216:195–205
64.
Kneifel K, Peinemann KV (1992) Preparation of hollow fiber membranes from polyetherimide for gas separation. J Membr Sci 65:295–307
65.
Wang D, Teo WK, Li K (2002) Permeation of H
2, N
2, CH
4, C
2H
6 and C
3H
8 through asymmetric poly(etherimide) hollow-fiber membrane. J Appl Polym Sci 86:698–702
66.
Wang D, Li K, Teo WK (1998) Preparation and characterization of polyetherimide asymmetric hollow fiber membranes for gas separation. J Membr Sci 138:193–201
67.
Wang D, Li K, Teo WK (2002) Preparation of asymmetric polyetherimide hollow fibre membrane with high gas selectivity. J Membr Sci 208:419–426
68.
Pientka Z, Brožová L, Bleha M, Puri P (2003) Preparation and characterization of ultrathin polymeric films. J Membr Sci 214:157–161
69.
Bruma M, Hamciuc E, Yampolskii Y, Alentiev A, Ronova IA, Rojkov EM (2004) Polyetherimides for gas separation membranes. Mol Cryst Liq Cryst 418:11–19
70.
Squire EN (1988) Amorphous copolymers of perfluoro-2,2-dimethyl-1,3-dioxole. EP0645406 B1, 11 Apr 2001
71.
Markel TC, Pinnau I, Prabhakar R, Freeman B (2006) Gas and transport properties of perfluoropolymers. In: Yampolskii Y, Pinnau I, Freeman B (eds) Materials science of membrane for gas and vapor separation. John Wiley & Sons, Chichester, UK
72.
Pinnau I, Toy LG (1996) Gas and vapour transport properties of amorphous perfluorinated copolymer membranes based on 2,2-bistrifluoromethyl-4,5-difluoro-1,3-dioxole/tetrafluoroethylene. J Membr Sci 109:125–133
73.
Alentiev AY, Yampolskii YP, Shantarovich VP, Nemser SM, Plate NA (1997) High transport parameters and free volume of perfluoroxole copolymers. J Membr Sci 126:123–132
74.
Nemser SM, Roman IC (1991) Polymer of perfluoro-2,2-dimethyl-1,3-dioxole membranes. US Patent 5051114A, 24 Sept 1991
75.
Masaru N, Isamu K, Kazuya O, Gen K, Masashi M, Shunichi S, Motoi K (1990) Novel fluorine-containing cyclic polymer. US Patent 4,897,457, 30 Jan 1990
76.
Avery DL, Shanbhag PV (2002) Designed selectivity gas permeable membranes. US Patent 6406517B1, 18 June 2002
77.
Tokarev A, Friess K, Machkova J, Sipek M, Yamapolskii Y (2006) Sorption and diffusion of organic vapors in amorphous Teflon AF2400. J Polym Sci B Polym Phys 44:832–844
78.
Jansen JC, Macchione M, Drioli E (2005) High flux asymmetric gas separation membranes of modified poly(ether ether ketone) prepared by the dry phase inversion technique. J Membr Sci 255:167–180
79.
Galland G, Lam TM (1993) Permeability and diffusion of gases in segmented polyurethanes: structure–properties relations. J Appl Polym Sci 50:1041–1058
80.
Chen SH, Yu KC, Houng SL, Lai JY (2000) Gas transport properties of HTPB based polyurethane/cosalen membrane. J Membr Sci 173:99–106
81.
Sadeghi M, Semsarzadeh MA, Barikani M, Chenar MP (2011) Gas separation properties of polyether-based polyurethane–silica nanocomposite membranes. J Membr Sci 376:188–195
82.
Talakesh MM, Morteza S, Chenar MP, Afsaneh K (2012) Gas separation properties of poly(ethylene glycol)/poly(tetramethylene glycol) based polyurethane membranes. J Membr Sci 415–416:469–477
83.
Liang W, Martin CR (1991) Gas transport in electronically conductive polymers. Chem Mater 3:390–391
84.
Martin CR, Liang W, Menon V, Parthasarathy R, Parthasarathy A (1993) Electronically conductive polymers as chemically-selective layers in membrane-based separations. Synth Met 55–57:3766–3773
85.
Anderson MR, Mattes BR, Reiss H, Kaner RB (1991) Conjugated polymer films for gas separations. Science 252:1412–1415
86.
Sairam M, Nataraj SK, Aminabhavi TM, Roy M, Madhusoodana CD (2006) Polyaniline membranes for separation and purification of gases, liquids, and electrolyte solutions. Sep Purif Rev 35:249–283
87.
Blinova NV, Frantisek S (2012) Functionalized polyaniline-based composite membranes with vastly improved performance for separation of carbon dioxide from methane. J Membr Sci 423–424:514–521
88.
Kuwabata S, Martin CR (1994) Investigation of the gas-transport properties of polyaniline. J Membr Sci 91:1–12
89.
Lee YM, Ha SY, Lee KY, Suh DH, Hong SY (1999) Gas separation through conductive polymer membranes. 2. Polyaniline membranes with high oxygen selectivity. Ind Eng Chem Res 38:1917–1924
90.
Illing G, Hellgardt K, Wakeman RJ, Jungbauer A (2001) Preparation and characterisation of polyaniline based membranes for gas separation. J Membr Sci 184:69–78
91.
Hasbullah H, Kumbharkar S, Ismail AF, Li K (2011) Preparation of polyaniline asymmetric hollow fiber membranes and investigations towards gas separation performance. J Membr Sci 366:116–124
92.
Julian H, Wenten G (2012) Polysulfone membranes for CO
2/CH
4 separation: state of the art. IOSR J Eng 2:484–495
93.
Dai Y, Guiver MD, Robertson GP, Kang YS, Lee KJ, Jho JY (2004) Preparation and characterization of polysulfones containing both hexafluoroisopropylidine and trimethylsilyl groups as gas separation membrane materials. Macromolecules 37:1403–1410
94.
Dai Y, Guiver MD, Robertson GP, Kang YS, Lee KJ (2003) Enhancement in the gas permeabilities of novel polysulfones with pendant 4-trimethylsilyl-α-hydroxylbenzyl substituents. Macromolecules 36:6807–6816
95.
Mc Hattie JS, Koros WJ, Paul DR (1991) Gas transport properties of polysulphones: 1. Role of symmetry of methyl group placement on bisphenol rings. Polymer 32:840–850
96.
Marchese J, Ochoa N, Pagliero C (1995) Preparation and gas separation performance of silicone-coated polysulfone membranes. J Chem Technol Biotechnol 63:329–336
97.
Wang D, Teo WK, Li K (2002) Preparation and characterization of high-flux polysulfone hollow fiber gas separation membranes. J Membr Sci 204:247–256
98.
Ahn J, Chung WJ, Pinnau I, Guiver MD (2008) Polysulfone/silica nanoparticle mixed-matrix membranes for gas. J Membr Sci 314:123–133
99.
Weng TH, Tseng HH, Wey MY (2009) Preparation and characterization of multi-walled carbon nanotube/PBNPI nanocomposite membrane for H
2/CH
4 separation. Int J Hydrogen Energy 34:8707–8715
100.
Mao Z, Jie X, Cao Y, Wang L, Li M, Yuan Q (2011) Preparation of dual-layer cellulose/polysulfone hollow fiber membrane and its performance for isopropanol dehydration and CO
2 separation. Sep Puri Technol 77:179–184
101.
Arahman N, Arifin B, Mulyati S, Ohmukai Y, Matsuyama H (2012) Structure change of polyethersulfone hollow fiber membrane modified with pluronic F127, polyvinylpyrrolidone, and Tetronic 1307. Mater Sci Appl 3:72–77
102.
Wang D, Li K, Teo WK (2000) Highly permeable polyethersulfone hollow fiber gas separation membranes prepared using water as non-solvent additive. J Membr Sci 176:147–158
103.
Borneman Z, Vant’s Hof JA, Smolders CA, Van vee HM (1986) Hollow fiber gas separation membranes: structure and properties. In: Proceedings of the fourth BOC Priestley conference. Royal Society of Chemistry, London, 16–18 Sept 1986
104.
Vant’s Hof JA (1988) Wet spinning of asymmetric hollow fiber membranes for gas separation. Ph.D. Thesis, Twente University, The Netherlands
105.
Van’t Hof JA, Reuvers AJ, Boon RM, Rolevink HHM, Smolders CA (1992) Preparation of asymmetric gas separation membranes with high selectivity by a dual-bath coagulation method. J Membr Sci 70:17–30
106.
Li SG, Koops GH, Mulder MHV, Van den Boomgaard T, Smolders CA (1994) Wet spinning of integrally skinned hollow fiber membranes by a modified dual-bath coagulation method using a triple orifice spinneret. J Membr Sci 94:329–340
107.
Kesting RE, Fritzsche AK, Murphy MK, Handermann AC, Cruse CA, Malon RF (1989) Process for forming asymmetric gas separation membranes having graded density skins. US Patent 4 871,494, 3 Oct 1989
108.
Fritzsche AK, Cruse CA, Murphy MK, Kesting RE (1990) Polyethersulfone and polyphenylsulfone fiber trilayer membranes spun from Lewis acid:base complexes—structure determination by SEM, DSC and oxygen plasma ablation. J Membr Sci 54:29–50
109.
Wang D (1995) Polyethersulfone hollow fiber gas separation membranes prepared from solvent systems containing nonsolvent additives. Ph.D. Thesis, National University of Singapore
110.
Wang D, Li K, Teo WK (1996) Polyethersulfone hollow fiber gas separation membranes prepared from NMP/alcohol solvent systems. J Membr Sci 115:85–108
111.
Kim DH, Ko YH, Kim TW, Park JS, Lee HK (2012) Separation of N
2/SF
6 binary mixtures using polyethersulfone (PESf) hollow fiber membrane. Korean J Chem Eng 29:1081–1085
112.
Jiang L, Chung TS, Li DF, Cao C, Kulprathipanja S (2004) Fabrication of Matimid/polyethersulfone dual-layer hollow fiber membranes for gas separation. J Membr Sci 240:91–103
113.
Ismail AF, Norida R, Rahman WAW, Matsuura T, Hashemifard SA (2011) Preparation and characterization of hyperthin-skinned and high performances asymmetric polyethersulfone membrane for gas separation. Desalination 273:93–104
114.
Pesiri DR, Jorgensen B, Dye RC (2003) Thermal optimization of polybenzimidazole meniscus membranes for the separation of hydrogen, methane, carbon dioxide. J Membr Sci 218:11–18
115.
Berchtold KA, Young JS, Dudeck KW (2006) High temperature separation membranes of hydrogen purification and carbon capture. LALP-06-043, Mar 2006
116.
Choi S, Coronas J, Lai Z, Yust D, Onorato F, Tsapatsis M (2008) Fabrication and gas separation properties of polybenzimidazole (PBI)/nanoporous silicates hybrid membranes. J Membr Sci 316:145–152
117.
Hosseini SS, Peng N, Chung TS (2010) Gas separation membranes developed through integration of polymer blending and dual-layer hollow fiber spinning process for hydrogen and natural gas hollow fiber spinning process for hydrogen and natural gas enrichments. J Membr Sci 349:156–166
118.
Kumbharkar SC, Liu Y, Li K (2011) High performance polybenzimidazole based asymmetric hollow fiber membranes for H
2/CO
2 separation. J Membr Sci 375:231–240
119.
Young JSY, Long GS, Espinoza BF (2006) Cross-linked polybenzimidazole membrane for gas separation. US Patent 20060021502A1, 2 Feb 2006
120.
Kong J, Li K (2001) Preparation of PVDF hollow-fiber membranes via immersion precipitation. J Appl Polym Sci 81:1643–1653
121.
Shen Y, Lua AC (2012) Preparation and characterization of mixed matrix membranes based on PVDF and three inorganic fillers (fumed nonporous silica, zeolite 4A and mesoporous MCM-41) for gas separation. Chem Eng J 192:201–210
122.
Consolati G, Pegoraro M, Quasso F, Severini F (2001) Chlorinated PTMSP membranes: permeability, free volume and physical properties. Polymer 42:1265–1269
123.
Masuda T, Isobe E, Higashimura T, Takada K (1983) Poly[1-(trimethylsilyl)-1-propyne]: a new high polymer synthesized with transition-metal catalysts and characterized by extremely high gas permeability. J Am Chem Soc 105:7473–7474
124.
Nagai K, Masuda T, Nakagawa T, Freeman BD, Pinnau I (2001) Poly[1-(trimethylsilyl)-1propyne and related polymers: synthesis properties and functions. Prog Polym Sci 26:721–798
125.
Ichiraku Y, Stern SA, Nakagawa T (1987) An investigation of the high gas permeability of poly(1-trimethylsilyl-1-propyne). J Membr Sci 34:5–18
126.
Merkel TC, He Z, Pinnau I, Freeman BD, Meakin P, Hill AJ (2003) Effect of nanoparticles on gas sorption and transport in poly(1-trimethylsilyl-1-propyne). Macromolecules 36:6844–6855
127.
Woo M, Choi J, Tsapatsis M (2008) Poly(1-trimethylsilyl-1-propyne)/MFI composite membranes for butane separation. Microporous Mesoporous Mater 110:330–338
128.
Qiu J, Zheng JM, Peinemann KV (2006) Gas transport properties in a novel poly(trimethylsilylpropyne) composite membrane with nanosized organic filler trimethylsilylglucose. Macromolecules 39:4093–4100
129.
Peter J, Peinemann KV (2009) Multilayer composite membrane for gas separation based on crosslinked PTMSP gutter layer and partially crosslinked Matrmid
® 5218 selective layer. J Membr Sci 340:62–72
130.
Vopiča O, De Angelis MG, Sarti GC (2014) Mixed gas sorption in glassy polymeric membranes: I. CO
2/CH
4 mixtures sorption in poly(1-trimetylsilyl-1-propyne) (PTMSP). J Membr Sci 449:97–108
131.
Xiao S, Feng X, Huang RYM (2007) Trimesoyl chloride crosslinked membranes for CO
2/N
2 separation and pervaporation dehydration of isopropanol. J Membr Sci 306:36–46
132.
Papanceaa A, Valente AJM, Patachia S, Lobo VMM (2009) Poly (vinyl alcohol) (PVA)-based polymer membranes. Nova, NY
133.
Zou J, Ho WSW (2006) CO
2-selective polymeric membranes containing amines in crosslinked poly(vinyl alcohol). J Membr Sci 286:310–332
134.
Matsuyama H, Terada A, Nakagawara T, Kitamura Y, Teramoto Y (1999) Facilitated transport of CO
2 through polyethylenimine/poly(vinyl alcohol) blend membrane. J Membr Sci 163:221–227
135.
Park YI, Lee KH (2001) Preparation of water-swollen hydrogel membranes for gas separation. J Appl Polym Sci 80:1785–1791
136.
Jenkins AD, Kratochvíl P, Stepto RFT, Suter UW (1996) Glossary of basic terms in polymer science. Pure Appl Chem 68(12):2287–2311
137.
Paul DR, Newman S (eds) (1978) Polymer blends. Academic, London
138.
Schmidt JJ, Gardella JA Jr, Salvati L Jr (1989) Surface studies of polymer blends. 2. An ESCA and IR study of poly(methyl methacrylate)/poly(vinyl chloride) homopolymer blends. Macromolecules 22:4489–4495
139.
Coleman MM, Painter PC (1976) Fourier transforms infrared studies of polymeric materials. J Macromol Sci C 16:197–313
140.
Yoshino M, Ito K, Okamoto KI (2000) Effects of hard-segment polymers on CO
2/N
2 gas-separation properties of poly(ethyleneoxide)-segmented copolymers. J Polym Sci B Polym Phys 38:1707–1715
141.
Zimmerman CM, Koros WJ (1999) Polypyrrolones for membrane gas separation. I. Structural comparison of gas transport and sorption properties. J Polym Sci B Polym Phys 37:1235–1249
142.
Zimmerman CM, Koros WJ (1999) Polypyrrolones for membrane gas separation. II. Activation energies and heat of sorption. J Polym Sci B Polym Phys 37:1251–1265
143.
Patil VE, van der Broeke LJP, Vercauteren FF, Keurentjes JTF (2006) Permeation of supercritical carbon dioxide through polymeric hollow fiber membranes. J Membr Sci 271:77–85
144.
Wang M, Yang D, Wang Z, Wang J, Wang S (2010) Effects of pressure and temperature on fixed-site carrier membrane for CO
2 separation from natural gas. Front Chem Eng Chin 4:127–132
145.
Semsarzadeh MA, Ghalei B (2012) Characterization and gas permeability of polyurethane and polyvinyl acetate blend membranes with polyethylene oxide-polypropylene oxide block copolymer. J Membr Sci 401–402:97–108
146.
Car A, Stropnik C, Yave W, Peinemann KV (2008) PEG modified poly(amide-b-ethylene oxide) membranes for CO
2 separation. J Membr Sci 307:88–95
147.
Yave W, Car A, Peinemann KV, Shaikh MQ, Rätzke K, Faupel F (2009) Gas permeability and free volume in poly(amide-b-ethylene oxide)/polyethylene glycol blend membranes. J Membr Sci 339:177–183
148.
Yave W, Car A, Funari SS, Nunes SP, Peinemann KV (2010) CO
2-philic polymer membrane with extremely high separation performance. Macromolecules 43:326–333
149.
Madaeni SS, Nooripour RM, Vatanpour V (2012) Preparation and characterization of polyimide and polyethersulfone blend membranes for gas separation. Asia-Pacific J Chem Eng 7:747–754
150.
Kapantaidakis GC, Koops GH, Wessling M (2002) Preparation and characterization of gas separation hollow fiber membranes based on polyethersulfone-polyimide miscible blends. Desalination 145:353–357
151.
Kapantaidakis GC, Koops GH (2002) High flux polyethersulfone-polyimide blend hollow fiber membrane for gas separation. J Membr Sci 204:153–171
152.
Kapantaidakis GC, Koops GH, Wessling M (2002) Effect of spinning conditions on the structure and the gas permeation properties of high flux polyethersulfone-polyimide blend hollow fibers. Desalination 144:121–125
153.
Koros WJ, Woods DG (2001) Elevated temperature application of polymer hollow-fiber membranes. J Membr Sci 181:157–166
154.
Seo Y, Kim S, Hong SU (2006) Highly selective polymeric membranes for gas separation. Polymer 47:4501–4504
155.
Okamoto K, Tanaka K, Muraoka M, Kita H, Maruyama Y (1992) Gas permeability and permselectivity of fluorinated polybenzoxazoles. J Polym Sci B 30:1215–1221
156.
McKeown NB (1998) Phthalocyanine materials: synthesis, structure and function. CUP, Cambridge, UK
157.
Ilinitch OM, Fenelonov VB, Lapkin AA, Okkel LG, Terskikh VV, Zamaraev KI (1999) Intrinsic microporosity and gas transport in polyphenylene oxide polymers. Microporous Mesoporous Mater 31:97–110
158.
McKeown NB, Budd PM (2009) Polymers of intrinsic microporosity. In: Encyclopedia of polymer science and technology. John Wiley & Sons, NY
159.
McKeown NB, Budd PM, Msayib KJ, Ghanem BS, Kingston HJ, Tattershall CE, Makhseed S, Reynolds KJ, Fritsch D (2005) Polymers of intrinsic microporosity (PIMs): bridging the void between microporous and polymeric materials. Chem Eur J 11:2610–2620
160.
McKeown NB (2012) Review article: Polymers of intrinsic microporosity. ISRN Mater Sci. Article ID 513986, 16p
161.
Makhseed S, McKeown NB, Msayib K, Bumajdad A (2005) Inducing solid-state isolation of the phthalocyanine macro-cycle by its incorporation within rigid, randomly shaped oligomers. J Mater Chem 5:1865–1870
162.
Msayib K, Makhseed S, McKeown NB (2001) Synthetic strategies towards macrodiscotic materials. Can a new dimension be added to liquid crystal polymers? J Mater Chem 11:2784–2789
163.
Du NY, Song J, Robertson GP, Pinnau I, Guiver M (2008) Linear high molecular weight ladder polymer via fast polycondensation of 5,5′,6,6′-tetrahydroxy- 3,3,3′,3′-tetramethylspirobisindane with 1,4-dicyanotetrafluoroben-zene. Macromol Rapid Commun 29:783–788
164.
Du NY, Cin MMD, Pinnau I, Nicalek A, Robertson GP, Guiver MD (2011) Azide-based cross-linking of polymers of intrinsic microporosity (PIMs) for condensable gas separation. Macromol Rapid Commun 32:631–636
165.
Du N, Park HB, Robertson GP, Dal-Cin MM, Visser T, Scoles L, Guiver MD (2011) Polymer nanosieve membranes for CO
2-capture applications. Nat Mater 10:372–375
166.
Koros WJ, Mahajan R (2000) Pushing the limits on possibilities for large scale gas separation: which strategies? J Membr Sci 175:181–196
167.
Roualdes S, Lee AVD, Berjoan R, Sanchez J, Durand J (1999) Gas separation properties of organosilicon plasma polymerized membranes. AIChE J 45:1566–1575
168.
Won J, Kim MH, Kang YS, Park HC, Kim UY, Choi SC, Koh SK (2000) Surface modification of polyimide and polysulfone membranes by ion beam for gas separation. J Appl Polym Sci 75:1554–1560
169.
Maya EM, Munoz DM, de la Campa JG, de Abajo J, Lozano AE (2006) Thermal effect on polyethyleneoxide-containing copolyimide membranes for CO
2/N
2 separation. Desalination 199:188–190
170.
Li Y, Cao C, Chung TS, Pramoda KP (2004) Fabrication of dual-layer polyethersulfone (PES) hollow fiber membranes with an ultrathin dense-selective layer for gas separation. J Membr Sci 245:53–60
171.
Castro-Domínguez B, Leelachaikul P, Takagaki A, Sugawara T, Kikuchi R, Oyama ST (2013) Perfluorocarbon-based supported liquid membranes for O
2/N
2 separation. Sep Purif Technol 116:19–24
172.
McLeay EE, Jansen JC, Kapteijn F (2006) Zeolite based films, membranes and membrane reactors: progress and prospects. Microporous Mesoporous Mater 90:198–220
173.
Barrer RM (1939) Activated diffusion in membranes. Trans Faraday Soc 35:644–656
174.
Van Den Broeke LJP, Bakker WJW, Kapteijn F, Moulijn JA (1999) Binary permeation through a silicalite-1 membrane. AIChE J 45:976–985
175.
Petersa TA, Fontalvoa J, Vorstmana MAG, Benesa NE, van Damb RA, Vroonb ZAEP, van Soest-Vercammenc ELJ, Keurentjesa JTF (2005) Hollow fibre microporous silica membranes for gas separation and pervaporation: synthesis, performance and stability. J Membr Sci 248:73–80
176.
Uhlhorn RJR, Keizer K, Burggraaf AJ (1992) Gas transport and separation with ceramic membranes. Part II. Synthesis and separation properties of microporous membranes. J Membr Sci 66:271–287
177.
de Lange RSA, Hekkink JHA, Keizer K, Burggraaf AJ (1995) Formation and characterization of supported microporous ceramic membranes prepared by sol–gel modification techniques. J Membr Sci 99:57–75
178.
de Vos RM, Verweij H (1998) Improved performance of silica membranes for gas separation. J Membr Sci 143:37–51
179.
Pohl PI, Heffelfinger GS (1999) Massively parallel molecular dynamics simulation of gas permeation across porous silica membrane. J Membr Sci 155:1–7
180.
Zhang K, Sunarso J, Shao Z, Zhou W, Sun C, Wang S, Liu S (2011) Research progress and materials selection guidelines on mixed conducting perovskite-type ceramic membranes for oxygen production. RSC Adv 1:1661–1676
181.
Kharton VV, Yaremchenko AA, Kovalevsky AV, Viskup AP, Naumovich EN, Kerko PF (1999) Perovskite-type oxides for high-temperature oxygen separation membranes. J Membr Sci 163:307–317
182.
Ayral A, Julbe A, Roualdes S, Rouessac V, Durand J, Sala B (2006) Silica membranes-basic principles. Period Polytech Ser Chem Eng 50:67–79
183.
Ramsay JDF (1999) Characterization of the pore structure of membranes. MRS Bull 24:36–40
184.
Topuz B, ˁiftˁioglu M (2006) Permeation of pure gases through silica membranes with controlled pore size. Desalination 200:80–82
185.
Shelekhin AB, Dixon AG, Ma YH (1992) Adsorption, permeation, and diffusion of gases in microporous glass membranes. J Membr Sci 75:233–244
186.
Naskar MK, Kundu D, Chatterjee M (2009) Silicate-1 zeolite membranes on unmodified and modified surfaces of ceramic supports: a comparative study. Bull Mater Sci 32:537–541
187.
Marković A, Stoltenberg D, Enke D, Schlünder E-U, Seidel-Morgenstern A (2009) Gas permeation through porous glass membranes. Part 1. Mesoporous glasses-Effect of pore diameter and surface properties. J Membr Sci 336:17–31
189.
Nomura M, Yamaguchi T, Nakao S (1997) Silicalite membranes modified by counterdiffusion CVD technique. Ind Eng Chem Res 36:4217–4223
190.
Zeolite—Wikipedia, the free encyclopedia. International Zeolite Association, database of zeolite structures
191.
Zeolite—Wikipedia, the free encyclopedia. Webmineral Zeolites, Dana Classification
192.
Caro J, Noack M, Kolsch P, Schafer R (2000) Zeolite membranes—state of their development and perspective. Microporous Mesoporous Mater 38:3–24
193.
Worathanakul P, Kongkachuichay P (2008) New SUZ-4 zeolite membrane from sol-gel technique. World Acad Sci Technol 2:11–21
194.
Wong WC, Au LTY, Ariso CT, Yeung KL (2001) Effects of synthesis parameters on the zeolite membrane growth. J Membr Sci 191:143–146
195.
Horri K, Tanaka K, Kita K, Okamoto K (1994) In: Proceedings of the 26th autumn meeting of Soc. Chem. Eng., Japan, p 99
196.
Bernal MP, Xometritakis G, Tsapatsis M (2001) Tubular MFI zeolite membranes made by secondary (seeded) growth. Catal Today 67:101–107
197.
Caro J, Noack M (2008) Zeolite membranes—recent developments and progress. Microporous Mesoporous Mater 115:215–233
198.
Tompsett GA, Conner WC, Yngvesson KS (2006) Microwave synthesis of nanoporous materials. Chem Phys Chem 7:296–319
199.
Li Y, Yang W (2008) Microwave synthesis of zeolite membranes: a review. J Membr Sci 316:3–17
200.
Cundy CS (1998) Microwave techniques in the synthesis and modification of zeolite catalyst. A review. Collect Czech Chem Commun 63:1699–1723
201.
Li Y, Chen H, Liu J, Yang W (2006) Microwave synthesis of LTA zeolite membranes without seeding. J Membr Sci 277:230–239
202.
Choi J, Jeong HK, Snyder MA, Stoeger JA, Masel RI, Tespatsis M (2009) Grain boundary defect elimination in a zeolite membrane by rapid thermal processing. Science 325:590–593
203.
Varoon K, Zhang X, Elyassi B, Brewer DD, Gette M, Kumar S, Lee A, Maheshwari S, Mittal A, Sung CY, Cococcioni M, Francis LF, McCormick AV, Mkhoyan A, Tsapatsis M (2011) Dispersible exfoliated zeolite nanosheets and their application as a selective membrane. Science 334:72–75
204.
Liu L, Cheng M, Ma D, Hu G, Pan X, Bao X (2006) Synthesis, characterization, and catalytic properties of MWW zeolite with variable Si/Al ratios. Microporous Mesoporous Mater 94:304–312
205.
Huang A, Wang N, Caro J (2012) Stepwise synthesis of sandwich-structured composite zeolite membranes with enhanced separation selectivity. Chem Commun 48:3542–3544
206.
Cheng ZL, Liu Z, Wan HL (2005) Microwave-heating synthesis and gas separation performance of NaA zeolite membrane. Chin J Chem 23:28–31
207.
Yuwen L, Zhu M, Su H, You X, Deng C, Lv X (2011) Effects of synthesis parameters on hydrothermal synthesis of NaA zeolite. Adv Mater Res 148:1444–1448
208.
Xu X, Yang W, Liu J, Lin L, Stroh N, Brunner H (2000) Synthesis and gas permeation properties of an NaA zeolite membrane. Chem Commun :603–604
209.
Aoki K, Kusakabe K, Morooka S (1998) Gas permeation properties of A-type zeolite membrane formed on porous substrate by hydrothermal synthesis. J Membr Sci 141:197–205
210.
Chen X, Yang W, Liu J, Xu X, Huang A, Lin L (2002) Synthesis of NaA zeolite membrane with high performance. J Mater Sci Lett 21:1023–1025
211.
Dey KP, Kundu D, Chatterjee M, Naskar MK (2013) Preparation of NaA zeolite membranes using poly(ethyleneimine) as buffer layer, and study of their permeation behavior. J Am Chem Soc 96:68–72
212.
Gies H (1986) Studies on clatherasis. VI: Crystal structure of decadodecasil 3R the missing link between zeolites and clathrasils. Z Kristallogr 175:93–104
213.
Nakayama K, Suzuki K, Yoshida M, Tomita T (2006) Method of preparing DDR type zeolite membrane, DDR type zeolite membrane, and composite DDR type zeolite membrane, and method for preparation thereof. US Patent 7014680B2, 21 Mar 2006
214.
van den Bergh J, Zhu W, Kapteijn F, Moulijn JA, Yajima K, Nakayama K, Tomita T, Yoshida S (2007) Natural gas purification wth a DDR zeolite membrane: permeation modeling with Maxwell–Stefan equations. Stud Surf Sci Catal 170:1021–1027
215.
van den Bergh J, Zhu W, Gascon J, Moulinj JA, Kapteijn F (2008) Separation and permeation characteristics of a DDR zeolite membrane. J Membr Sci 316:35–45
216.
Tomita T, Nakayama K, Sakai H (2004) Gas separation characteristics of DDR type zeolite membrane. Microporous Mesoporous Mater 68:71–75
217.
Kanezashi M, O’Brien-Abraham J, Lin YS (2008) Gas permeation through DDR-type zeolite membranes at high temperatures. AICHE J 54:1478–1486
218.
Xiao J, Wei J (1992) Diffusion mechanism of hydrocarbons in zeolites. 1. Theory. Chem Eng Sci 47:1123–1141
219.
Himeno S, Tomita T, Suzuki K, Nakayama K, Yajima K, Yoshida S (2007) Synthesis and permeation of a DDR-type zeolite membrane for separation of CO
2/CH
4 gaseous mixtures. Ind Eng Chem Res 46:6989–6997
220.
Himeno S, Takeya K, Fujita S (2010) Development of biogas separation process using DDR-type zeolite membrane. Kagaku Kogaku Ronbun 36:545–551
221.
Hong M, Li S, Falconer JL, Noble RD (2008) Hydrogen purification using a SAPO-34 membrane. J Membr Sci 307:277–283
222.
Li S, Falconer JL, Noble RD (2006) Improved SAPO-34 membranes for CO
2/CH
4 separations. Adv Mater 18:2601–2603
223.
Li S, Martinek JG, Falconer JL, Noble RD, Gardner TQ (2005) High-pressure CO
2/CH
4 separation using SAPO-34 membranes. Ind Eng Chem Res 44:3220–3228
224.
Poshusta JC, Tuan VA, Pape EA, Noble RD, Falconer JL (2000) Separation of light gas mixtures using SAPO-34 membranes. AIChE J 46:779–789
225.
Zhou R, Ping EW, Funke HH, Falconer JL, Noble RD (2013) Improving SAPO-34 membrane synthesis. J Membr Sci 444:384–393
226.
Li S, Carreon MA, Zhang Y, Funke HH (2010) Scale-up of SAPO-34 membranes for CO
2/CH
4 separation. J Membr Sci 352:7–13
227.
Ping WE, Zhou R, Funke HH, Falconer JL, Noble RD (2012) Seeded-gel synthesis of SAPO-34 single channel and monolith membranes, for CO
2/CH
4 separations. J Membr Sci 415–416:770–775
228.
Poshusta JC, Noble RD, Falconer JL (2001) Characterization of SAPO-34 membranes by water adsorption. J Membr Sci 186:25–40
229.
Carreon ML, Li S, Carreon MA (2012) AIPO-18 membranes for CO
2/CH
4 separation. Chem Commun 48:2310–2312
231.
Poshusta JC, Noble RD, Falconer JL (1999) Temperature and pressure effects on CO
2 and CH
4 permeation through MFI zeolite membranes. J Membr Sci 160:115–123
232.
Takata Y, Tsuru T, Yoshioka T, Asaeda M (2002) Gas permeation properties of MFI zeolite membranes prepared by the secondary growth of colloidal silicate and application to the methylation of toluene. Microporous Mesoporous Mater 54:257–268
233.
Kwon WT, Kim SR, Kim EB, Bae SY, Kim Y (2011) H
2/CO
2 gas separation characteristics of zeolite membrane at high temperature. Adv Mater Res 26–28:267–270
234.
Welk ME, Nenoff TM (2004) H
2 separation through zeolite thin film membranes. Prep Pap Am Chem Soc Div Fuel Chem 40:889–890
235.
Richter H, Voigt I, Fischer G, Puhlfürβ P (2003) Preparation of zeolite membranes on the inner surface of ceramic tubes and capillaries. Sep Purif Technol 32:133–138
236.
Aoki K, Tuan VA, Falconer JL, Noble RD (2000) Gas permeation properties of ion-exchanged ZSM-5 zeolite membranes. Microporous Mesoporous Mater 39:485–492
237.
Tuan VA, Noble RD, Falconer JL (2000) Boron-substituted ZSM-5 membranes: preparation and separation performance. AIChE J 46:1201–1208
238.
Wang H, Lin YS (2012) Synthesis and modification of ZSM-5/silicate bilayer membrane with improved hydrogen separation performance. J Membr Sci 396:128–137
239.
Cheng Y, Li JS, Wang LJ, Sun XY, Liu XD (2006) Synthesis and characterization of Ce-ZSM-5 zeolite membranes. Sep Purif Technol 51:210–218
240.
Hasegawa Y, Tanaka T, Watanabe K, Jeong BH, Kusakabe K, Morooka S (2002) Separation of CO
2/CH
4 and CO
2/N
2 systems using ion-exchaged FAU-type zeolite membranes with different Si/Al ratios. Korean J Chem Eng 19:309–313
241.
Gu X, Dong J, Nenoff TM (2005) Synthesis of defect-free FAU-type zeolite membranes and separation for dry and moist CO
2/N
2 mixtures. Ind Eng Chem Res 44:937–944
242.
Kumar P, Sung CY, Muraza O, Cococcioni M, Hashimi SA (2011) H
2S adsorption by Ag and Cu ion exchanged faujasite. Microporous Mesoporous Mater 156:127–133
243.
Julbe A, Motuzas J, Cazeville F, Volle G, Guizard C (2003) Synthesis of sodalite/α-Al
2O
3 composite membranes by microwave heating. Sep Purif Technol 32:139–149
244.
Xu X, Bao Y, Song C, Yang W, Liu J, Lin L (2004) Microwave-assisted hydrothermal synthesis of hydroxyl-sodalite zeolite membrane. Microporous Mesoporous Mater 75:173–181
245.
Cui Y, Kita H, Okamoto KI (2004) Preparation and gas separation performance of zeolite T membrane. J Mater Chem 14:924–952
246.
Chen X, Wang J, Yin D, Yang J, Lu J, Zhang Y, Chen Z (2013) High performance zeolite T membrane for dehydration of organics by a new varying temperature hot-dip coating method. AIChE J 59:936–947
247.
Barrer RM, Villger H (1969) The crystal structure of the synthetic zeolite L. Z Kristallogr Bd 128:352–370
248.
Tsapatsis M, Lovallo M, Okubo T, Davis ME, Sadakata M (1995) Characterization of zeolite L nanoclusters. Chem Mater 7:1734–1741
249.
Yin X, Wang X, Chu N, Yang J, Lu J, Zhang Y, Yin D (2010) Zeolite L/carbon nanocomposite membrane on the porous alumina tubes and their gas separation properties. J Membr Sci 348:181–189
250.
Corma A, Rey F, Rius J, Sabater MJ, Valencia S (2004) Supramolecular self-assembled molecules as organic directing agent for synthesis of zeolites. Nature 431:287–290
251.
Casado-Coterillo C, Sato J, Jimare MT, Valencia S, Corma A (2012) Preparation and characterization of ITQ-29/polysulfone mixed-matrix-membranes for gas separation: effect of zeolite composition crystal size. Chem Eng Sci 73:116–122
252.
Tiscornia I, Valencia S, Corma A, Téllez C, Coronas J, Santamaria J (2008) Preparation of ITQ-29 (Al-free zeolite A) membranes. Microporous Mesoporous Mater 110:303–309
253.
Huang A, Caro J (2010) Steam-stable hydrophobic ITQ-29 molecular sieve membrane with H
2 selectivity prepared by secondary growth using Krytofix 222 as SDA. Chem Commun 46:7748–7750
254.
Moscoso JG, Lewis GJ, Miller MA, Jan DY, Patton RL, Rohde LM (2003) UZM-5, UZM-5P and UZM-6: crystalline aluminosilicate zeolite and processes using the same. US Patent 6613302 B1, 2 Sept 2003
255.
Blackwell CS, Broach RW, Gatter MG, Holmgren JS, Jan DY, Lewis GJ, Mezza BJ, Mezza TM, Miller MA, Moscoso JG, Patton RL, Rohde LM, Schoonover MW, Sinkler W, Wilson BA, Wilson ST (2003) Open-framework materials synthesized in the TMA + TEA + Mixed-Template system: the new low Si/Al ratio zeolites UZM-4 and UZM5. Angew Chem Int Ed 42:1737–1740
256.
Liu C, Moscoso JG, Wilson ST (2012) Microporous UZM-5 inorganic zeolite membranes for gas, vapor, and liquid separations. US Patent 20120240763 A1, 27 Sept 2012
257.
Maghsoodloorad H, Mirfendereski SY, Mohammadi T, Pak A (2011) Effects of gel parameters on the synthesis and characteristics of W-type zeolite nanoparticles. Clay Clay Miner 59:328–335
258.
Mohammdi T, Maghsoodloorad H (2012) Synthesis and characterization of ceramic membranes (W-Type) zeolite membrane. Int J Appl Ceram Technol 1:1–11
259.
Li T, Pan Y, Peinemann KV, Lai Z (2013) Carbon dioxide selective mixed matrix composite membrane containing ZIF-7 nano-fillers. J Membr Sci 425–426:235–242
260.
Bae TH, Lee JS, Qiu W, Koros WJ, Jones CW, Nair S (2010) A high performance gas-separation containing submicrometer-sized metal-organic framework crystals. Angew Chem Int Ed 49:9863–9866
261.
Bux H, Liang F, Li Y, Cravillon J, Wiebcke M, Caro J (2009) Zeolitic imidazolate membrane with molecular sieving properties by microwave-assisted solvothermal synthesis. J Am Chem Soc 131:1600–1601
262.
Li YS, Liang FY, Bux H, Feldhoff A, Yand WS, Caro J (2010) Molecular sieve membrane: supported metal-organic framework with high hydrogen selectivity. Angew Chem Int Ed 49:548–551
263.
Liu Y, Hu E, Khan EA, Lai Z (2010) Synthesis of ZIF-69 membranes and separation of CO
2/CO mixture. J Membr Sci 153:36–40
264.
Venna SR, Carreon MA (2010) Highly permeable zeolite imidazolate framework-8 membranes for CO
2/CH
4 separation. J Am Chem Soc 132:76–78
265.
Sandström L, Sjöberg E, Hedlund J (2011) Very high flux MFI membrane for CO
2 separation. J Membr Sci 380:232–240
266.
Nair S, Lai Z, Nikolakis V, Xomeritakis G, Bonilla G, Tsapatsis M (2001) Separation of close-boiling hydrocarbon mixtures by MFI and FAU membranes made by secondary growth. Microporous Mesoporous Mater 48:219–228
267.
Bétard A, Bux HG, Henke S, Zacher D, Caro J, Fischer RA (2012) Fabrication of a CO
2-selective membrane by step-wise liquid-phase deposition of an alkylether functionalized pillared-layer metal-organic framework [Cu
2L
2P]
n on a macroporous support. Microporous Mesoporous Mater 150:76–82
268.
Bennett TD, Goodwin AL, Dove MT, Keen DA, Tucker MG, Barney ER, Soper AK, Bithell EG, Tan JC, Cheetham AK (2010) Structure and properties of an amorphous metal-organic framework. Phys Rev Lett 104:115503–115506
269.
Ranjan R, Tsapatsis M (2009) Microporous metal organic framework membrane on porous support using the seeded growth method. Chem Mater 21:4920–4924
270.
Bohrman JA, Carreon MA (2012) Synthesis of CO
2/CH
4 separation performance of Bio-MOF-1 membranes. Chem Commun 48:5130–5132
271.
An J, Rosi NL (2010) Tuning MOF CO
2 adsorption properties via cation exchange. J Am Chem Soc 132:5578–5579
272.
An J, Shade CM, Chengelis-Czegan DA, Petoud S, Rosi NL (2011) Zinc-adeninate metal–organic framework for aqueous encapsulation and sensitization of near-infrared and visible emitting lanthanide cations. J Am Chem Soc 133:1220–1223
273.
Xomeritakis G, Naik S, Braunbarth CM, Cornelius CJ, Pardey R, Brinker CJ (2003) Organic-templated silica membranes. I. Gas and vapor transport properties. J Membr Sci 215:225–233
274.
Li Y, Chung TS (2008) Exploratory development of dual-layer carbon-zeolite nanocomposite hollow fiber membrane with high performance for oxygen enrichment and natural gas separation. Microporous Mesoporous Mater 113:315–324
275.
Alfaro S, Valenzuela A (2006) Zeolite membrane prepared by the dry gel method for gas separation. Adv Mater Technol Mater Proc J 8:63–66
276.
Kuznicki SM (1990) Preparation of small-pored crystalline titanium molecular sieve zeolites. US Patent 4938939 A, 3 July 1990
277.
Stoeger JA, Veziri CM, Palomino M, Corma A, Kanellopoulos NK, Tsapatsis MN, Karanikolos G (2012) On stability and performance of highly c-oriented AlPO
4-5 and CoAPO-5 membranes. Microporous Mesoporous Mater 147:286–294
278.
Nagase T, Kiyozumi Y, Hasegava Y, Inoue T, Ikeda T (2007) Dehydration of concentrated acetic acid solutions by pervaporation using novel MER zeolite membranes. Chem Lett 36:594–595
279.
Hasegawa Y, Nagase T, Kiyozumi Y, Mizukami F (2010) Preparation, characterization, and dehydration performance of MER-type zeolite membranes. Sep Purif Technol 73:25–31
280.
Kim SJ, Yang S, Reddy GK, Smirniotis P, Dong J (2013) Zeolite membrane reactor for high-temperature water-gas shift reaction: effects of membrane properties and operating conditions. Energy Fuel 27:4471–4480
281.
Yang S, Lin X, Lewis W, Suyetin M, Bichoutskaia E, Parker JE, Tang CC, Allan DR, Rizkallah PJ, Hubberstey P, Champness NR, Thomas KM, Blake AJ, Schro´´der M (2012) A partially interpenetrated metal-organic framework for selective hysteretic sorption of carbon dioxide. Nat Mater 11:710–716
282.
Radnedge S (2012) New holey material soaks up CO
2/News/gasworld. 18 June 2012
284.
Shah M, McCarthy MC, Sachdeva S, Lee AK, Jeong HK (2012) Current status of metal-organic framework membranes for gas separations: promises and challenges. Ind Eng Chem Res 51:2179–2199
285.
Rowsell JLC, Yaghi OM (2004) Metal-organic frameworks: a new class of porous materials. Microporous Mesoporous Mater 73:3–14
286.
Yoo Y, Lai Z, Jeong HK (2009) Fabrication of MOF-5 membranes using microwave-induced rapid seeding and solvothermal secondary growth. Microporous Mesoporous Mater 123:100–106
287.
Liu Y, Ng Z, Khan AE, Jeong HK, Ching CB, Lai Z (2009) Synthesis of continuous MOF-5 membranes on porous α-alumina substrates. Microporous Mesoporous Mater 118:296–301
288.
Klinowski J, Paz FAA, Silva P, Rocha J (2011) Microwave-assisted synthesis of metal-organic frameworks. Dalton Trans 40:321–330
289.
Hu Y, Dong X, Nan J, Jin W, Ren X, Xu N, Lee YM (2011) Metal-organic framework membranes fabricated
via reactive seeding. Chem Commun 47:737–739
290.
Schoedel A, Scherb C, Bein T (2010) Oriented nanoscale films of metal-organic frameworks by temperature gel-layer synthesis. Angew Chem Int Ed 49:7225–7228
291.
Lu H, Zhu S (2013) Interfacial synthesis of free standing metal-organic framework-membranes. Eur J Inorg Chem 2013:1294–1300
292.
Ben T, Lu C, Pei C, Xu S, Qiu S (2012) Polymer-supported and free-standing metal-organic framework membrane. Chem Eur 18:10250–10253
293.
Ai X, Hu X (2003) Study on organic-inorganic hybrid membranes. Huxue Jinzhan 16:83–89
294.
Chung TS, Jiang LY, Kulprathipanja S (2007) Mixed matrix membranes (MMMs) comprising organic polymers with dispersed inorganic fillers for gas separation. Prog Polym Sci 32:483–507
295.
Bouma RHB, Checchetti A, Chidichimo G, Drioli E (1997) Permeation through a heterogeneous membrane: the effect of the dispersed phase. J Membr Sci 128:141–149
296.
Funk CV, Lloyd DRE (2008) Zeolite-filled microporous mixed matrix (ZeoTIPS) membranes: prediction of gas separation performance. J Membr Sci 313:224–231
297.
Paul DR, Kemps DR (1973) The diffusion time lag in polymer membranes containing adsorptive fillers. J Polym Sci Polym Phys 41:79–93
298.
Kulprathipanja S, Neuzil RW, Li NN (1988) Separation of fluids by means of mixed matrix membranes. US Patent 4740219, 26 Apr 1988
299.
Kulprathipanja S, Neuzil RW, Li NN (1992) Separation of gases by means of mixed matrix membranes. US Patent 5127925, 7 July 1992
300.
Hussain M, König A (2012) Mixed-matrix membranes for gas separation, polydimethylsiloxane filled with zeolite. Chem Eng Technol 35:561–569
301.
Ismail AF, Kusworo TD, Mustafa A (2008) Enhanced gas permeation of polyethersulfone mixed matrix hollow fiber membranes using novel Dynasylan Ameo silane agent. J Membr Sci 319:306–312
302.
Widjojo N, Chung TS, Kulprathipanja S (2008) The fabrication of hollow fiber membranes with double-layer mixed-matrix materials for gas separation. J Membr Sci 325:326–335
303.
Chaidou CI, Pantoleontos G, Koutsonikolas DE, Kaldis SP, Sakellaropoulos GP (2012) Gas separation properties of polyimide-zeolite mixed matrix membrane. Sep Purif Technol 47:950–962
304.
Boroglu MS, Gurkaynak MA (2011) Fabrication and characterization of silica modified polyimide-zeolite mixed matrix membranes for gas separation properties. Polym Bull 66:463–478
305.
Karkhanechi H, Kazemian H, Nazockdast H, Mozdianfard MR, Bidoki SM (2012) Fabrication of homogeneous polymer-zeolite nanocomposites as mixed-matrix membranes for gas separation. Chem Eng Technol 35:885–888
306.
Adams R, Carson C, Ward J, Tannenbaum R, Koros W (2010) Metal organic framework mixed matrix membranes for gas separation. Microporous Mesoporous Mater 131:13–20
307.
Nik OG, Chen XY, Kaliaguine S (2012) Functionalized metal organic framework-polyimide mixed matrix membranes for CO
2/CH
4 separation. J Membr Sci 413–414:48–61
308.
Tanh Jeazet HB, Staudt C, Janiak C (2012) Metal–organic frameworks in mixed-matrix membranes for gas separation. Dalton Trans 41:14003–14027
309.
Hu J, Cai H, Ren H, Wei Y, Xu Z, Liu H, Hu Y (2010) Mixed-matrix membrane hollow fibers of Cu
2(BTC)
2 MOF and polyimide for gas separation and adsorption. Ind Eng Chem Res 49:12605–12612
310.
Basu S, Cano-Odena A, Vankelecom IFJ (2011) MOF-containing mixed-matrix membranes for CO
2/CH
4 and CO
2/N
2 binary gas mixture separations. Sep Purif Technol 81:31–40
311.
Li Y, Chung TS, Huang Z, Kulprathipanja S (2008) Dual-layer polyethersulfone (PES)/BTDA-TDI/MDI co-polyimide (P84) hollow fiber membrane with submicron PES-zeolite beta mixed matrix dense-selective layer for gas separation. J Membr Sci 277:28–37
312.
Jiang LY, Chung TS, Kulprathipanja S (2006) Fabrication of mixed matrix hollow fibers with intimate polymer-zeolite interface for gas separation. AIChE J 52:2898–2908
313.
Cong H, Radosz M, Towler BF, Shen Y (2007) Polymer-inorganic membrane for gas separation. Sep Purif Technol 55:281–291
314.
Liu H (1997) Synthesis of TiO
2 nanopowder enwrapped by organic membrane with microwave induced plasma method. Huaxue Tongbao 10:44–46
315.
Iwata M, Adahi T, Tomidokoro M, Ohta M, Kobayashi T (2003) Hybrid sol-gel membranes of polyacrylonitrile-tetraethoxysilane composites for gas perm selectivity. J Appl Polym Sci 88:1752–1759
316.
Ahmad J, Deshmukh K, Hägg MB (2013) Influence of TiO
2 on the chemical, mechanical, and gas separation properties of polyvinyl alcohol-titanium dioxide (PVA-TiO
2) nanocomposite membrane. Int J Polym Anal Charact 18:287–296
317.
Perez EV, Balkus KJ, Ferraris JP, Musselman IH (2009) Mixed-matrix membranes containing MOF-5 for gas separation. J Membr Sci 328:165–173
318.
Morooka S, Kusakabe K (1999) Ceramics: getting into the 2000s, Part D. In: Advances in science and technology (Faenza, Italy), vol 16, pp 389–400
319.
Gopolan S (2002) Using ceramic mixed ionic and electronic conductors for gas separation. JOM 54:26–29
320.
Kulprathipanja A, Alptekin GO, Falconer JL, Way JD (2005) Pd and Pd-Cu membranes: inhibition of H
2 Permeation by H
2S. J Membr Sci 254:49–62
321.
Kluiters SCA (2004) Status review on membrane system for hydrogen preparation. Intermediate Report EU Project MIGREYD NNES-2001-670, ECNC-04-102
322.
Fuertes AB (2000) Adsorption-selective carbon membranes for gas separation. J Membr Sci 177:9–16
323.
Jones CW, Koros WJ (1994) Carbon molecular sieve gas separation membranes. Part I. Preparation and characterization based on polyimide precursors. Carbon 32:1419–1425
324.
Ismail AF, David LIB (2001) A review of the latest development of carbon membranes for gas separation. J Membr Sci 193:1–18
325.
Sauf SM, Ismail AF (2004) Fabrication of carbon membranes for gas separation—a review. Carbon 42:241–259
326.
Saufi SM, Ismail AF (2002) Development and characterization of polyacrylonitrile (PAN) based carbon hollow fiber membrane. Songklanakarin J Sci Technol 24:843–854
327.
Song C, Wang T, Qiu Y, Qiu J, Cheng H (2009) Effect of carbonization atmosphere on the structure changes of PAN carbon membranes. J Porous Mater 16:197–203
328.
Grainger D, Hägg MB (2008) The recovery of carbon molecular sieve membranes of hydrogen transmitted in natural gas networks. Int J Hydrogen Energy 33:2379–2388
329.
Favas EP, Kapantaidakis GC, Nolan JW, Mitropoulos AC, Kanellopoulos NK (2007) Preparation, characterization and gas permeation properties of carbon hollow fiber membranes based on Matrimid
® 5218 precursor. J Mater Process Technol 186:102–110
330.
Salleh WNW, Ismail AF (2011) Fabrication and characterization of PEI/PVP-based carbon hollow fiber membranes for CO
2/CH
4 and CO
2/N
2 separation. AIChE J 58:3167–3175
331.
Favvas EP, Kouvelos EP, Romanos GE, Pillatos GL, Mitropoulos AC, Kanellopoulos NK (2008) Characterization of highly selective microporous carbon hollow fiber membranes prepared from commercial co-polyimide. J Porous Mater 15:625–613
332.
Rao PS, Wey MY, Tseng HH, Kumjar IA, Weng TH (2008) A comparison of carbon/nanotube molecular sieve membranes with polymer blend carbon molecular sieve membranes for the gas permeation application. Microporous Mesoporous Mater 113:499–510
333.
Kim YK, Park HB, Lee YM (2004) Carbon molecular sieve membranes derived from thermally labile polymer containing blend polymers and their gas separation properties. J Membr Sci 343:9–17
334.
Kim YK, Park HB, Lee YM (2005) Gas separation properties of carbon molecular sieve membranes derived from polyimide/polyvinylpyrrolidone blends: effect of the molecular weight of polyvinylpyrrolidone. J Membr Sci 251:159–167
335.
Lee HJ, Suda H, Haraya K, Moon SH (2007) Gas permeation properties of carbon molecular sieving membranes derived from the polymer blend of polyphenylene oxide (PPO)/polyvinylpyrrolidone (PVP). J Membr Sci 296:139–146
336.
Zhang B, Wang T, Wu Y, Liu Q, Liu S, Qiu J (2008) Preparation and gas permeation of composite carbon membranes from poly(phthalazinone ether sulfone ketone). Sep Purif Technol 60:259–263
337.
Yoshimune M, Fujiwara I, Suda H, Haraya K (2005) Novel carbon molecular sieve membranes derived from poly (phenylene oxide) and its derivatives for gas separation. Chem Lett 34:958–959
338.
Hatori H, Yamada Y, Shiraishi M (1992) Preparation of macroporous carbon films from polyimide by phase inversion method. Carbon 30:303–304
339.
Hatori H, Shiraishi M, Nakata H, Yoshitomi S (1992) Carbon molecular sieve films from polyimide. Carbon 30:305–306
340.
Rao MB, Sirkar S (1993) Nanoporous carbon membranes for separation of gas mixtures by selective surface flow. J Membr Sci 85:253–254
341.
Rao MB, Sirkar S (1996) Performance and pore characterization of nanoporous carbon membrane for gas separation. J Membr Sci 110:109–118
342.
Rao MB, Sirkar S (1993) Nanoporous carbon membrane for gas separation. Gas Sep Purif 7:279–284
343.
Centeno TA, Vilas JL, Fuertes AB (2004) Effect of phenolic resin pyrolysis conditions on carbon membrane performance for gas separation. J Membr Sci 228:45–54
344.
Acharya M, Foley HC (1991) Spray-coating of nanoporous carbon membranes for air separation. J Membr Sci 161:1–5
345.
Centeno TA, Fuertes AB (2000) Carbon molecular sieve gas separation membranes based on poly(vinylidene chloride-co-vinyl chloride). Carbon 38:1067–1073
346.
Park HB, Lee YM (2003) Pyrolytic carbon-silica membrane: a promising membrane for improved gas separation. J Membr Sci 213:263–272
347.
Hosseini SS, Chung TS (2009) Carbon membranes from blends of PBI and polyimides for N
2/CH
4 and CO
2/CH
4 separation and hydrogen purification. J Membr Sci 328:174–185
348.
Zhang B, Shen G, Wu Y, Wang T, Qiu J, Xu T, Fu C (2009) Preparation and characterization of carbon membranes derived from poly(phthalazinone ether) for gas separation. Ind Eng Chem Res 48:2886–2890
349.
Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354:56–58
350.
Iijima S, Ichihashi T (1993) Single-shell carbon nanotubes of 1-nm diameter. Nature 663:603–605
351.
Cho SJ, Shrestha SP, Lee SB, Boo JH (2014) Electrical characteristics of carbon nanotubes by plasma and microwave surface treatments. Bull Korean Chem Soc 35(3):905–907
352.
Wang X, Li Q, Xie J, Jin Z, Wang J, Li Y, Jiang K, Fan S (2009) Fabrication of ultralong and electrically uniform single-walled carbon nanotubes on clean substrates. Nano Lett 9:3137–3141
353.
Zhao YL, Stoddart JF (2009) Noncovalent functionalization of single-walled carbon nanotubes. Acc Chem Res 42:1161–1171
354.
Bernhole J, Brenner D, Buongiorno Nardelli M, Meunier V, Roland C (2002) Mechanical and electrical properties of nanotubes. Annu Rev Mater Sci 32:347–375
355.
Sholl DS, Johnson JK (2006) Making high-flux membranes with carbon nanotubes. Science 312:1003–1004
356.
Noy A (2013) Kinetic model of gas transport in carbon nanotube channels. J Phys Chem C 117:7656–7660
357.
Majumder M, Ajayan PM (2010) Carbon nanotube membranes: a new frontier in membrane science. In: Drioli E, Giorno L (eds) Comprehensive membrane science and engineering. Elsevier Science, Amsterdam
358.
Bruggen BV (2012) The separation power of nanotubes in membranes: a review. ISRN Nanotechnol 2012:1–17
359.
Arora G, Sandler SI (2006) Air separation by single wall carbon nanotubes: mass transport and kinetic selectivity. J Chem Phys 124:084702
360.
Chen H, Sholl DS (2006) Prediction of selectivity and flux for CH
4/H
2 separations using single walled carbon nanotubes as membranes. J Membr Sci 269:152–162
361.
Ackerman DM, Skoulidas AI, Sholl DS, Johnson JK (2003) Diffusivities of Ar and Ne in carbon nanotubes. Mol Simulat 29:677–684
362.
Skoulidas AI, Ackerman DM, Johnson JK, Sholl DS (2002) Rapid transport of gases in carbon nanotubes. Phys Rev Lett 89:185901/1–4
363.
Kim S, Pechar TW, Marand E (2006) Poly(imide siloxane) and carbon nanotube mixed matrix membranes for gas separation. Desalination 192:330–339
364.
Tseng HH, Kumar IA, Weng TH, Lu CY, Wey MY (2009) Preparation and characterization of carbon molecular sieve membranes for gas separation—the effect of incorporated multi-wall carbon nanotubes. Desalination 240:40–45
365.
Kusworo TD, Ismail AF, Widiasa IN, Johari S, Sunarso S (2010) CO
2 removal from biogas using carbon nanotubes mixed matrix membranes. Int J Sci Eng 1:1–6
366.
Geim AK, Novoselov KS (2007) The rise of grapheme. Nat Mater 6:183–191
367.
Meyer JC, Geim AK, Katsnelson MI, Novoselov KS, Booth TJ, Roth S (2007) The structure of suspended graphene sheets. Nature 446:60–63
369.
Bunch JS, Verbridge SS, Alden JS, van der Zande AM, Parpia JM, Craighead HG, McEuen PL (2008) Impermeable atomic membranes from graphene sheets. Nano Lett 8:2458–2462
371.
Forbeaux I, Themlin J-M, Debever J-M (1998) Heteroepitaxial graphite on 6H-SiC(0001): interface formation through conduction-band electronic structure. Phys Rev B 58:16396–16406
372.
Cambaz ZG, Yushin G, Osswald S, Mochalin V, Gogotsi Y (2008) Noncatalytic synthesis of carbon nanotubes, graphene and graphite on SiC. Carbon 48:841–849
373.
Du H, Li J, Zhang J, Su G, Li X, Zhao Y (2011) Separation of hydrogen and nitrogen gases with porous graphene membrane. J Phys Chem C 115:23261–23266
374.
Hauser AW, Schwerdtfeger P (2012) Methane-selective nanoporous graphene membranes for gas purification. Phys Chem Chem Phys 14:13292–13298
375.
Koeing SP, Wang L, Pellegrino J, Bunch S (2012) Selective molecular sieving through porous graphene. Nat Nanotechnol 7:728–732
376.
Oyama ST, Lee D, Hacarlioglu P, Saraf RF (2004) Theory of hydrogen permeability in nonporous silica membranes. J Membr Sci 244:45–53
377.
Ying J, Peng C, Lei F, Huiqian L, Huan Y, Cong R, Lei S, Changzhi G, Hai-Hu W (2008) Critical fields and anisotropy of NdFeAsO
0.82F
0.18 single crystals. Appl Phys Lett 93:032503
378.
Qin X, Meng Q, Feng Y, Gao Y (2013) Graphene with line defect as a membrane for gas separation: design via a first-principles modeling. Surf Sci 607:153–158
379.
Jiang DE, Cooper VR, Dai S (2009) Porous graphene as the ultimate membrane for gas separation. Nano Lett 9:4019–4024
380.
Blankenburg S, Bieri M, Fasel R, Mullen K, Pignedoli CA, Passerone D (2010) Graphene as an atmospheric nanofilter. Small 6:2266–2271
381.
Schrier J (2010) Helium separation using porous graphene membranes. J Phys Chem Lett 1:2284–2287
382.
Schrier J, McClain J (2012) Thermally-driven isotope separation across nanoporous graphene. Chem Phys Lett 521:118–124
383.
Jungthawan S, Reunchan P, Limpijumnog S (2013) Theoretical study of strained porous structures and their gas separation properties. Carbon 54:359–364
384.
Lee J, Aluru NR (2013) Water-solubility-driven separation of gases using graphene membrane. J Membr Sci 428:546–553
385.
Lai Z, Bonilla G, Diaz I, Nery JG, Sujaoti K, Amat MA, Kokkoli E, Terasaki O, Thompson RW, Tsapatsis M, Vlachos DG (2003) Microstructural optimization of a zeolite membrane for organic vapor separation. Science 300:456–460
386.
Park HB, Lee YM (2005) Fabrications and characterization of nanoporous carbon/silica membrane. Adv Mater 17:477–483
387.
Yampolskii Y, Pinnau I, Freeman B (eds) (2006) Materials science of membrane for gas and vapor separation. John Wiley & Sons, Chichester, UK
388.
Park HB, Jung CH, Lee YM, Hill AJ, Pas SJ, Mudie ST, Wagner EV, Freeman BD, Cookson DJ (2007) Polymers with cavities tuned for fast selective transport of small molecules and ions. Science 318:254–258
389.
Khayet M, Matsuura T (2011) Membrane distillation, principles and applications. Elsevier, Amsterdam
390.
Henis JMS, Tripodi MK (1980) Multicomponent membranes for gas separation. US Patent 4230463A, 28 Oct 1980
391.
Fritzsche AK, Cruse CA, Kesting RE, Murphy MK (1990) Hollow fiber membranes spun from lewis acid:base complexes. I. Structure determination by oxygen plasma ablation. J Appl Polym Sci 40:19–40
392.
Kesting RE (1990) The four tires of structure in integrally skinned phase inversion membranes and their relevance to the various separation regimes. J Appl Polym Sci 41:2739–2752
393.
Chung TS, Teoh SK, Hu X (1997) Formation of ultrathin high-performance hollow fiber membranes. J Membr Sci 133:161–175
394.
Shieh JJ, Chung TS, Wang R, Srinivasan MP, Paul DR (2001) Gas separation performance of poly(4-vinylpyridine)/polyetherimide composite hollow fibers. J Membr Sci 182:111–123
395.
Husain S (2013) Methods of preparing a crosslinked fiber membrane. US Patent 20130239805 A1, 19 Sept 2013
396.
Baker WR (2002) Future directions of membrane gas separation technology. Ind Eng Chem Res 41:1393–1411
397.
Kesting RE, Cruse CA, Fritzsche AK, Malon RF, Murphy MK, Handermann AC (1992) Asymmetric gas separation membranes having graded density skins. EP0257012 B1, 7 Oct 1992
398.
Kusakabe K, Li ZY, Maeda H, Morooka S (1995) Preparation of supported composite membrane by pyrolysis of polycarbosilane for gas separation at high temperature. J Membr Sci 103:175–180
399.
Ren X, Ren J, Deng M (2012) Poly(amide-6-b-ethylene oxide) membranes for sour gas separation. Sep Purif Technol 89:1–8
400.
Jiang X, Ding J, Kumar A (2008) Polyurethane-poly(vinylidene fluoride) (PU-PVDF) thin film composite membranes for gas separation. J Membr Sci 323:371–378
401.
Gupta Y, Hellgardt K, Wakeman RJ (2006) Enhanced permeability of polyaniline based nano membranes for gas separation. J Membr Sci 282:60–70
402.
Lopez JL, Matson SL, Marchese J, Quinn JA (1986) Diffusion through composite membranes: a two dimensional analysis. J Membr Sci 27:301–325
403.
Henis JMS, Tripodi MK (1980) A novel approach to gas separations using composite hollow fiber membranes. Sep Sci Technol 15:1059–1068
404.
Henis JMS, Tripodi MK (1981) Composite hollow fiber membranes for gas separation: the resistance model approach. J Membr Sci 8:233–246
405.
Reid BD, Ebron VHM, Musselman IH, Ferraris JP, Balkus JKJ (2002) Enhanced gas selectivity in thin film composite membranes of poly(3-(2-acetoxyethyl)thiophene). J Membr Sci 195:181–192
406.
Way JD, Noble RD, Flynn TM, Sloan ED (1982) Liquid membrane transport: a survey. J Membr Sci 12:239–259
407.
Kocherginsky NM, Yang Q, Seelam L (2007) Recent advances in supported liquid membrane technology. Sep Purif Technol 53:171–177
408.
Ward WJ, Robb WL (1967) Carbon dioxide-oxygen separation: facilitated transport of carbon dioxide across a liquid film. Science 156:1481–1484
409.
Baker RW, Roman I, Lonsdale HK (1987) Liquid membranes for the production of oxygen enriched air. J Membr Sci 31:15–29
410.
Lee SH, Kim BS, Lee EW, Park YI, Lee JM (2006) The removal of acid gases from crude natural gas by using novel supported liquid membranes. Desalination 200:21–22
411.
Chen XS, Nishide H, Tsuchida E (1996) Analysis of facilitated oxygen transport through in a liquid membrane of hemoglobin. Bull Chem Soc Jpn 69:255–259
412.
Castro-Domínguez B, Leelachaikul P, Takagaki A, Sugawara T, Kikuchi R, Oyama ST (2013) Perfluorocarbon-based supported liquid membrane for O
2/N
2. Sep Purif Technol 118:19–24
413.
Deetz DW (1987) Stabilized ultrathin liquid membranes for gas separation. In: Noble RD, Way JD (eds) Liquid membranes, ACS symposium series. American Chemical Society, Washington, DC
414.
Ward WJ (1970) Analytical and experimental studies of facilitated transport. AIChE J 16:405–410
415.
Donaldson TL, Quinn JA (1975) Carbon dioxide transport through enzymatically active synthetic membranes. Chem Eng Sci 30:103–115
416.
Ghai RK, Ertl H, Dullien FAL (1973) Liquid diffusion of nonelectrolytes, Part I. AIChE J 19:881–900
417.
Ghai RK, Ertl H, Dullien FAL (1974) Liquid diffusion of nonelectrolytes, Part II. AIChE J 20:1–20
418.
Reid RC, Prausnitz JM, Sherwood TK (1977) The properties of gases and liquids. McGraw-Hill, New York
419.
Cserjési P, Nemestóthy N, Vass A, Csanádi Z, Bélafi-Bako K (2009) Study on gas separation by supported liquid membranes applying novel ionic liquids. Desalination 246:370–374
420.
Seeberger A, Kern C, Uerdingen M, Jess A (2007) Gas separation by supported ionic liquid membranes. In: DGMK-conference, opportunities and challenges at the interface between petrochemistry and refinery, 10–12 Oct 2007, Hamburg, Germany
421.
Cserjési P, Nemestóthy N, Vass A, Csanádi Z, Bélafi-Bakó K (2009) Study on gas separation by supported liquid membranes applying novel ionic liquids. Desalination 245:743–747
422.
Gan Q, Rooney D, Xue M, Thompson G, Zou Y (2006) An experimental study of gas transport and separation properties of ionic liquids supported on nanofiltration membranes. J Membr Sci 280:948–956
423.
Neves L, Nemestóthy N, Alves VD, Cserjési P, Bélafi-Bakó K, Coelhoso I (2009) Separation of bio-hydrogen by supported ionic liquid membranes. Desalination 240:311–315
424.
Neves L, Dabek W, Coelhoso IM, Crespo JG (2006) Design of new selective Nafion membranes using room temperature ionic liquids. Desalination 199:525–526
425.
Cserjési P, Nemestóthy N, Bélafi-Bakó K (2010) Gas separation properties of supported liquid membranes prepared with unconventional ionic liquids. J Membr Sci 349:6–11
426.
Robeson LM (2008) The upper bound revisited. J Membr Sci 320:390–400
427.
Hanioka S, Maruyama T, Sotani T, Teramoto M, Matsuyama H, Nakashima K, Hanaki M, Kuboto F, Goto M (2008) CO
2 separation facilitated by task-specific ionic liquids using a supported liquid membrane. J Membr Sci 314:1–4
428.
Zhao W, He G, Nie F, Zhang L, Feng H, Liu H (2012) Membrane liquid loss mechanism of supported ionic liquid membrane for gas separation. J Membr Sci 411–412:73–80
429.
Luis P, Neves LA, Afonso CAM, Coelhoso IM, Crespo JG, Garea A, Irabiena A (2009) Facilitated transport of CO
2 and SO
2 through supported ionic liquid membranes (SILMs). Desalination 245:485–493
430.
Majumdar S, Guha AK, Sirkar KK (1998) A new liquid membrane technique for gas separation. AIChE J 34:1135–1245