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105. Yamazaki IM, Paterson R, Geraldo LP (1996) A new generation of track etched membranes
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106. Yampolskii Y (2012) Polymeric gas separation membranes. Macromolecules 45:3298–3311.
https://doi.org/10.1021/ma300213b
107. Yilanci A, Dincer I, Ozturk HK (2009) A review on solar-hydrogen/fuel cell hybrid energy
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108. Yu S, Welp U, Hua LZ et al (2005) Fabrication of palladium nanotubes and their application
in hydrogen sensing. Chem Mater 17:3445–3450. https://doi.org/10.1021/cm048191i
109. Zhang J, Liu X, Neri G, Pinna N (2016) Nanostructured materials for room-temperature gas
sensors. Adv Mater 28:795–831
110. Zhang J, Xin Q, Li X et al (2019) Mixed matrix membranes comprising aminosilanefunctionalized graphene oxide for enhanced CO 2 separation. J Memb Sci 570–571:343–354.
https://doi.org/10.1016/j.memsci.2018.10.075
111. Zhang W, Gaggl M, Gluth GJG, Behrendt F (2014) Gas separation using porous cement
membrane. J Environ Sci 26:140–146. https://doi.org/10.1016/S1001-0742(13)60389-7
112. Zito PF, Caravella A, Brunetti A et al (2017) Knudsen and surface diffusion competing for
gas permeation inside silicalite membranes. J Memb Sci 523:456–469
113. Zito PF, Caravella A, Brunetti A et al (2018) Discrimination among gas translation, surface
and Knudsen diffusion in permeation through zeolite membranes. J Memb Sci 564:166–173.
https://doi.org/10.1016/j.memsci.2018.07.023
R. Kumar et al.
92. Thakkar H, Lawson S, Rownaghi AA, Rezaei F (2018) Development of 3D-printed polymerzeolite composite monoliths for gas separation. Chem Eng J 348:109–116. https://doi.org/10.
1016/j.cej.2018.04.178
93. Thomas C, James BD, Lomax FD, Kuhn IF (2000) Fuel options for the fuel cell vehicle:
hydrogen, methanol or gasoline? Int J Hydrog Energy 25:551–567. https://doi.org/10.1016/
S0360-3199(99)00064-6
94. Urch H, Geismann C, Ulbricht M, Epple M (2006) Deposition of functionalized calcium
phosphate nanoparticles on functionalized polymer surfaces. Mater und Werkstofftechnik
Entwicklung, Fert Prüfung, Eig und Anwendungen Tech Werkstoffe 37:422–425
95. van Zoelen W, ten Brinke G (2009) Thin films of complexed block copolymers. Soft Matter
5:1568–1582
96. Verweij H (2003) Ceramic membranes: morphology and transport. J Mater Sci 38:4677–4695
97. Wang M, Wang Z, Zhao S et al (2017) Recent advances on mixed matrix membranes for CO 2
separation. Chin J Chem Eng 25:1581–1597. https://doi.org/10.1016/j.cjche.2017.07.006
98. Wang Y, Yang Q, Zhong C, Li J (2017) Theoretical investigation of gas separation in functionalized nanoporous graphene membranes. Appl Surf Sci 407:532–539. https://doi.org/10.
1016/j.apsusc.2017.02.253
99. Ward TL, Dao T (1999) Model of hydrogen permeation behavior in palladium membranes. J
Memb Sci 153:211–231
100. Wee S-L, Tye C-T, Bhatia S (2008) Membrane separation process—pervaporation through
zeolite membrane. Sep Purif Technol 63:500–516. https://doi.org/10.1016/j.seppur.2008.
07.010
101. Wei S, Zhou S, Wu Z et al (2018) Mechanistic insights into porous graphene membranes for
helium separation and hydrogen purification. Appl Surf Sci 441:631–638. https://doi.org/10.
1016/j.apsusc.2018.02.111
102. Weng T-H, Tseng H-H, Wey M-Y (2009) Preparation and characterization of multi-walled carbon nanotube/PBNPI nanocomposite membrane for H 2 /CH 4 separation. Int J Hydrog Energy
34:8707–8715
103. Wijmans JG, Baker RW (1995) The solution-diffusion model: a review. J Memb Sci 107:1–21.
https://doi.org/10.1016/0376-7388(95)00102-I
104. Wijmans JGH, Baker RW (2006) The solution-diffusion model: a unified approach to membrane permeation. Materials science of membranes for gas and vapor separation. Wiley,
Chichester, UK, pp 159–189
105. Yamazaki IM, Paterson R, Geraldo LP (1996) A new generation of track etched membranes
for microfiltration and ultrafiltration. Part I: Preparation and characterisation. J Memb Sci
118:239–245. https://doi.org/10.1016/0376-7388(96)00098-1
106. Yampolskii Y (2012) Polymeric gas separation membranes. Macromolecules 45:3298–3311.
https://doi.org/10.1021/ma300213b
107. Yilanci A, Dincer I, Ozturk HK (2009) A review on solar-hydrogen/fuel cell hybrid energy
systems for stationary applications. Prog Energy Combust Sci 35:231–244. https://doi.org/
10.1016/J.PECS.2008.07.004
108. Yu S, Welp U, Hua LZ et al (2005) Fabrication of palladium nanotubes and their application
in hydrogen sensing. Chem Mater 17:3445–3450. https://doi.org/10.1021/cm048191i
109. Zhang J, Liu X, Neri G, Pinna N (2016) Nanostructured materials for room-temperature gas
sensors. Adv Mater 28:795–831
110. Zhang J, Xin Q, Li X et al (2019) Mixed matrix membranes comprising aminosilanefunctionalized graphene oxide for enhanced CO 2 separation. J Memb Sci 570–571:343–354.
https://doi.org/10.1016/j.memsci.2018.10.075
111. Zhang W, Gaggl M, Gluth GJG, Behrendt F (2014) Gas separation using porous cement
membrane. J Environ Sci 26:140–146. https://doi.org/10.1016/S1001-0742(13)60389-7
112. Zito PF, Caravella A, Brunetti A et al (2017) Knudsen and surface diffusion competing for
gas permeation inside silicalite membranes. J Memb Sci 523:456–469
113. Zito PF, Caravella A, Brunetti A et al (2018) Discrimination among gas translation, surface
and Knudsen diffusion in permeation through zeolite membranes. J Memb Sci 564:166–173.
https://doi.org/10.1016/j.memsci.2018.07.023
