Zeolite Catalysis

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Zeolite Catalysis ( zeolite-catalysis )

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37. Sjöberg, E.; Sandström, L.; Öhrman, O.G.W.; Hedlund, J. Separation of CO2 from black liquor derived syngas using an MFI membrane. J. Membr. Sci. 2013, 443, 131–137. 38. Zhou, M.; Korelskiy, D.; Ye, P.; Grahn, M.; Hedlund, J. A Uniformly Oriented MFI Membrane for Improved CO2 Separation. Angew. Chem. Int. Ed. 2014, 53, 3492–3495. 39. Davis, M.E. Zeolites from a Materials Chemistry Perspective. Chem. Mater. 2014, 26, 239–245. 40. Peng, Y.; Lu, H.; Wang, Z.; Yan, Y. Microstructural optimization of MFI-type zeolite membranes for ethanol-water separation. J. Mater. Chem. A 2014, 2, 16093–16100. 41. Iyoki, K.; Itabashi, K.; Okubo, T. Progress in seed-assisted synthesis of zeolites without using organic structure-directing agents. Microporous Mesoporous Mater. 2014, 189, 22–30. 42. Kosinov, N.; Gascon, J.; Kapteijn, F.; Hensen, E.J.M. Recent developments in zeolite membranes for gas separation. J. Membr. Sci. 2016, 499, 65–79. 43. Morigami, Y.; Kondo, M.; Abe, J.; Kita, H.; Okamoto, K. The first large-scale pervaporation plant using tubular-type module with zeolite NaA membrane. Sep. Purif. Technol. 2001, 25, 251–260. 44. Gallego-Lizon, T.; Edwards, E.; Lobiundo, G.; Freitas dos Santos, L. Dehydration of water/t-butanol mixtures by pervaporation: Comparative study of commercially available polymeric, microporous silica and zeolite membranes. J. Membr. Sci. 2002, 197, 309–319. 45. Urtiaga, A.; Gorri, E.D.; Casado, C.; Ortiz, I. Pervaporative dehydration of industrial solvents using a zeolite NaA commercial membrane. Sep. Purif. Technol. 2003, 32, 207–213. 46. Richter, H.; Voigt, I.; Kühnert, J.-T. Dewatering of ethanol by pervaporation and vapour permeation with industrial scale NaA-membranes. Desalination 2006, 199, 92–93. 47. Sato, K.; Aoki, K.; Sugimoto, K.; Izumi, K.; Inoue, S.; Saito, J.; Ikeda, S.; Nakane, T. Dehydrating performance of commercial LTA zeolite membranes and application to fuel grade bio-ethanol production by hybrid distillation/vapor permeation process. Microporous Mesoporous Mater. 2008, 115, 184–188. 48. Rangnekar, N.; Mittal, N.; Elyassi, B.; Caro, J.; Tsapatsis, M. Zeolite membranes—A review and comparison with MOFs. Chem. Soc. Rev. 2015, 44, 7128–7154. 49. Bai, C.; Jia, M.-D.; Falconer, J.L.; Noble, R.D. Preparation and separation properties of silicalite composite membranes. J. Membr. Sci. 1995, 105, 79–87. 50. Dong, J.; Lin, Y.S. In Situ Synthesis of P-Type Zeolite Membranes on Porous α-Alumina Supports. Ind. Eng. Chem. Res. 1998, 37, 2404–2409. 51. Yan, Y.; Davis, M.E.; Gavalas, G.R. Preparation of Zeolite ZSM-5 Membranes by In-situ Crystallization on Porous α-Al2O3. Ind. Eng. Chem. Res. 1995, 34, 1652–1661. 52. Tuan, V.A.; Li, S.; Falconer, J.L.; Noble, R.D. In situ Crystallization of Beta Zeolite Membranes and Their Permeation and Separation Properties. Chem. Mater. 2002, 14, 489–492. 53. Lin, X.; Chen, X.; Kita, H.; Okamoto, K. Synthesis of silicalite tubular membranes by in situ crystallization. AIChE J. 2003, 49, 237–247. 58

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