[1] J. Sunarso, S. Baumann, J.M. Serra, W.A. Meulenberg, S. Liu, Y.S. Lin, J.C. Diniz da Costa, Mixed ionic-electronic conducting (MIEC) ceramic-based membranes for oxygen separation, J. Membr. Sci. 320(2008) 13-41. [2] X. Tan, Y. Liu, K. Li, Mixed conducting ceramic hollow-fiber membranes for air separation, AIChE J. 51(2005) 1991-2000. [3] P.N. Dyer, R.E. Richards, S.L. Russek, D.M. Taylor, Ion transport membrane technology for oxygen separation and syngas production, Solid State Ionics 134(2000) 21-33. [4] H.J.M. Bouwmeester, Dense ceramic membranes for methane conversion, Catal. Today 82(2003) 141-150. [5] Y. Zeng, Y.S. Lin, S.L. Swartz, Perovskite-type ceramic membrane:Synthesis, oxygen permeation and membrane reactor performance for oxidative coupling of methane, J. Membr. Sci. 150(1998) 87-98. [6] Z. Shao, H. Dong, G. Xiong, Y. Cong, W. Yang, Performance of a mixed-conducting ceramic membrane reactor with high oxygen permeability for methane conversion, J. Membr. Sci. 183(2001) 181-192. [7] Z. Shao, S.M. Haile, A high-performance cathode for the next generation of solidoxide fuel cells, Nature 431(2004) 170-173. [8] V.V. Kharton, A.A. Yaremchenko, E.N. Naumovich, Research on the electrochemistry of oxygen ion conductors in the former Soviet Union. Ⅱ. Perovskite-related oxides, J. Solid State Electrochem. 3(1999) 303-326. [9] L. Qiu, T.H. Lee, L.M. Liu, Y.L. Yang, A.J. Jacobson, Oxygen permeation studies of SrCo0.8Fe0.2O3-δ, Solid State Ionics 76(1995) 321-329. [10] P. Zeng, R. Ran, Z. Chen, W. Zhou, H. Gu, Z. Shao, S. Liu, Efficient stabilization of cubic perovskite SrCoO3-δ by B-site low concentration scandium doping combined with sol-gel synthesis, J. Alloys Compd. 455(2008) 465-470. [11] C.H. Chen, H.J.M. Bouwmeester, R.H.E. van Doorn, H. Kruidhof, A.J. Burggraaf, Oxygen permeation of La0.3Sr0.7CoO3-δ, Solid State Ionics 98(1997) 7-13. [12] V.V. Kharton, L. Shuangbao, A.V. Kovalevsky, A.P. Viskup, E.N. Naumovich, A.A. Tonoyan, Oxygen permeability and thermal expansion of SrCo (Ti)O3-δ perovskites, Mater. Chem. Phys. 53(1998) 6-12. [13] V.V. Kharton, A.A. Yaremchenko, A.V. Kovalevsky, A.P. Viskup, E.N. Naumovich, P.F. Kerko, Perovskite-type oxides for high-temperature oxygen separation membranes, J. Membr. Sci. 163(1999) 307-317. [14] S. Liu, X. Tan, Z. Shao, J.C. Diniz da Costa, Ba0.5Sr0.5Co0.8Fe0.2O3-δ ceramic hollowfiber membranes for oxygen permeation, AIChE J. 52(2006) 3452-3461. [15] H. Wang, Y. Cong, W. Yang, Oxygen permeation study in a tubular Ba0.5Sr0.5Co0.8Fe0.2O3-δ oxygen permeable membrane, J. Membr. Sci. 210(2002) 259-271. [16] M. Salehi, F. Clemens, E.M. Pfaff, S. Diethelm, C. Leach, T. Graule, B. Grobéty, A case study of the effect of grain size on the oxygen permeation flux of BSCF diskshaped membrane fabricated by thermoplastic processing, J. Membr. Sci. 382(2011) 186-193. [17] X. Zhu, S. Sun, Y. Cong, W. Yang, Operation of perovskite membrane under vacuum and elevated pressures for high-purity oxygen production, J. Membr. Sci. 345(2009) 47-52. [18] H. Pan, L. Li, X. Deng, B. Meng, X. Tan, K. Li, Improvement of oxygen permeation in perovskite hollow fibre membranes by the enhanced surface exchange kinetics, J. Membr. Sci. 428(2013) 198-204. [19] C. Hamel, A. Seidel-Morgenstern, T. Schiestel, S. Werth, H. Wang, C. Tablet, J. Caro, Experimental and modeling study of the O2-enrichment by perovskite fibers, AIChE J. 52(2006) 3118-3125. [20] A.Behrouzifar,A.A.Asadi,T.Mohammadi,A.Pak,Experimentalinvestigationandmathematical modeling of oxygen permeation through dense Ba0.5Sr0.5Co0.8Fe0.2O3-δ (BSCF) perovskite-type ceramic membranes, Ceram. Int. 38(2012) 4797-4811. [21] M.A. Habib, R. Ben Mansour, M.A. Nemit-allah, Modeling of oxygen permeation through a LSCF ion transport membrane, Comput. Fluids 76(2013) 1-10. [22] S.J. Xu, W.J. Thomson, Oxygen permeation rates through ion-conducting perovskite membranes, Chem. Eng. Sci. 54(1999) 3839-3850. [23] H. Wang, R. Wang, D.T. Liang, W. Yang, Experimental and modeling studies on Ba0.5Sr0.5Co0.8Fe0.2O3-δ (BSCF) tubular membranes for air separation, J. Membr. Sci. 243(2004) 405-415. [24] X. Tan, K. Li, Modeling of air separation in a LSCF hollow-fiber membrane module, AIChE J. 48(2002) 1469-1477. [25] Z. Shao, W. Yang, Y. Cong, H. Dong, J. Tong, G. Xiong, Investigation of the permeation behavior and stability of a Ba0.5Sr0.5Co0.8Fe0.2O3-δ oxygen membrane, J. Membr. Sci. 172(2000) 177-188. [26] L. Wang, R. Merkle, J. Maier, T. Acartürk, U. Starke, Oxygen tracer diffusion in dense Ba0.5Sr0.5Co0.8Fe0.2O3-δ films, Appl. Phys. Lett. 94(2009) 071908. [27] E. Bucher, A. Egger, P. Ried, W. Sitte, P. Holtappels, Oxygen nonstoichiometry and exchange kinetics of Ba0.5Sr0.5Co0.8Fe0.2O3-δ, Solid State Ionics 179(2008) 1032-1035. [28] S. McIntosh, J.F. Vente, W.G. Haije, D.H.A. Blank, H.J.M. Bouwmeester, Oxygen stoichiometry and chemical expansion of Ba0.5Sr0.5Co0.8Fe0.2O3-δ measured by in situ neutron diffraction, Chem. Mater. 18(2006) 2187-2193. [29] P.Zeng,Z.Chen,W.Zhou,H.Gu,Z.Shao,S.Liu,Re-evaluationofBa0.5Sr0.5Co0.8Fe0.2O3-δ perovskite as oxygen semi-permeable membrane, J. Membr. Sci. 291(2007) 148-156. [30] Y. Wei, H. Liu, J. Xue, Z. Li, H. Wang, Preparation and oxygen permeation of U-shaped perovskite hollow-fiber membranes, AIChE J. 57(2011) 975-984. |