[1] S.J. Kim, S.H. Ko, K.H. Kang, J. Han, Direct seawater desalination by ion concentration polarization, Nat. Nanotechnol. 5(4) (2010) 297-301.[2] M. Elimelech, W.A. Phillip, The future of seawater desalination:Energy, technology, and the environment, Science 333(6043) (2011) 712-717.[3] L.F. Greenlee, D.F. Lawler, B.D. Freeman, B. Marrot, P. Moulin, Reverse osmosis desalination:Water sources, technology, and today's challenges, Water Res. 43(9) (2009) 2317-2348.[4] D. Li, Y. Yan, H. Wang, Recent advances in polymer and polymer composite membranes for reverse and forward osmosis processes, Prog. Polym. Sci. 61(2016) 104-155.[5] M.A. Shannon, P.W. Bohn, M. Elimelech, J.G. Georgiadis, B.J. Marinas, A.M. Mayes, Science and technology for water purification in the coming decades, Nature 452(7185) (2008) 301-310.[6] T. Humplik, J. Lee, S.C. O'Hern, B.A. Fellman, M.A. Baig, S.F. Hassan, M.A. Atieh, F. Rahman, T. Laoui, R. Karnik, Nanostructured materials for water desalination, Nanotechnology 22(29) (2011) 292001.[7] K.P. Lee, T.C. Arnot, D. Mattia, A review of reverse osmosis membrane materials for desalination-Development to date and future potential, J. Membr. Sci. 370(1-2) (2011) 1-22.[8] S. Burn, M. Hoang, D. Zarzo, F. Olewniak, E. Campos, B. Bolto, O. Barron, Desalination techniques-A review of theopportunities for desalination in agriculture, Desalination 364(2015) 2-16.[9] M. Safarpour, A. Khataee, V. Vatanpour, Thin film nanocomposite reverse osmosis membrane modified by reduced graphene oxide/TiO2 with improved desalination performance, J. Membr. Sci. 489(2015) 43-54.[10] J.E. Cadotte, Evolution of composite reverse osmosis membranes, Materials Science of Synthetic Membranes, ACS symposium series no. 269, American Chemical Society, Washington, D.C. 1985, pp. 273-294.[11] G.-R. Xu, J.-N. Wang, C.-J. Li, Strategies for improving the performance of the polyamide thin film composite (PA-TFC) reverse osmosis (RO) membranes:Surface modifications and nanoparticles incorporations, Desalination 328(2013) 83-100.[12] M. Liu, Z. Chen, S. Yu, D. Wu, C. Gao, Thin-film composite polyamide reverse osmosis membranes with improved acid stability and chlorine resistance by coating Nisopropylacrylamide-co-acrylamide copolymers, Desalination 270(1-3) (2011) 248-257.[13] R.J. Petersen, Composite reverse osmosis and nanofiltration membranes, J. Membr. Sci. 83(1) (1993) 81-150.[14] M. Liu, S. Yu, J. Tao, C. Gao, Preparation, structure characteristics and separation properties of thin-film composite polyamide-urethane seawater reverse osmosis membrane, J. Membr. Sci. 325(2) (2008) 947-956.[15] S. Yu, M. Liu, X. Liu, C. Gao, Performance enhancement in interfacially synthesized thin-film composite polyamide-urethane reverse osmosis membrane for seawater desalination, J. Membr. Sci. 342(1-2) (2009) 313-320.[16] Y. Zhao, Z. Zhang, L. Dai, H. Mao, S. Zhang, Enhanced both water flux and salt rejection of reverse osmosis membrane through combining isophthaloyl dichloride with biphenyl tetraacyl chloride as organic phase monomer for seawater desalination, J. Membr. Sci. 522(2017) 175-182.[17] J. Wu, Z. Wang, Y. Wang, W. Yan, J. Wang, S. Wang, Polyvinylamine-grafted polyamide reverse osmosis membrane with improved antifouling property, J. Membr. Sci. 495(2015) 1-13.[18] J. Meng, Z. Cao, L. Ni, Y. Zhang, X. Wang, X. Zhang, E. Liu, A novel salt-responsive TFC RO membrane having superior antifouling and easy-cleaning properties, J. Membr. Sci. 461(2014) 123-129.[19] L. Ni, J. Meng, X. Li, Y. Zhang, Surface coating on the polyamide TFC RO membrane for chlorine resistance and antifouling performance improvement, J. Membr. Sci. 451(2014) 205-215.[20] Y. Pan, L. Ma, S. Lin, Y. Zhang, B. Cheng, J. Meng, One-step bimodel grafting via a multicomponent reaction toward antifouling and antibacterial TFC RO membranes, J. Mater. Chem. A 4(41) (2016) 15945-15960.[21] H. Dong, L. Zhang, H.L. Chen, C.J. Gao, Mixed-matrix membranes for water treatment:Materials, synthesis and properties, Prog. Chem. 26(12) (2014) 2007-2018.[22] J. Yao, H. Wang, Zeolitic imidazolate framework composite membranes and thin films:Synthesis and applications, Chem. Soc. Rev. 43(13) (2014) 4470-4493.[23] Y. Zhang, Y. Wei, Z. Cao, H. Zhang, Y. Yao, Progress and prospect in the development of reverse osmosis membrane technology, Chem. Ind. Eng. 32(5) (2015) 8-19.[24] M.F. Jimenez-Solomon, P. Gorgojo, M. Munoz-Ibanez, A.G. Livingston, Beneath the surface:Influence of supports on thin film composite membranes by interfacial polymerization for organic solvent nanofiltration, J. Membr. Sci. 448(2013) 102-113.[25] E.-S. Kim, Y.J. Kim, Q. Yu, B. Deng, Preparation and characterization of polyamide thin-film composite (TFC) membranes on plasma-modified polyvinylidene fluoride (PVDF), J. Membr. Sci. 344(1-2) (2009) 71-81.[26] J. Wei, X. Jian, C. Wu, S. Zhang, C. Yan, Influence of polymer structure on thermal stability of composite membranes, J. Membr. Sci. 256(1-2) (2005) 116-121.[27] W.-C. Chao, Y.-H. Huang, W.-S. Hung, Q. An, C.-C. Hu, K.-R. Lee, J.-Y. Lai, Effect of the surface property of poly(tetrafluoroethylene) support on the mechanism of polyamide active layer formation by interfacial polymerization, Soft Matter 8(34) (2012) 8998-9004.[28] H.I. Kim, S.S. Kim, Plasma treatment of polypropylene and polysulfone supports for thin film composite reverse osmosis membrane, J. Membr. Sci. 286(1-2) (2006) 193-201.[29] C. Ba, J. Economy, Preparation of PMDA/ODA polyimide membrane for use as substrate in a thermally stable composite reverse osmosis membrane, J. Membr. Sci. 363(1-2) (2010) 140-148.[30] M. Namvar-Mahboub, M. Pakizeh, Development of a novel thin film composite membrane by interfacial polymerization on polyetherimide/modified SiO2 support for organic solvent nanofiltration, Sep. Purif. Technol. 119(2013) 35-45.[31] R. Das, M.E. Ali, S.B.A. Hamid, S. Ramakrishna, Z.Z. Chowdhury, Carbon nanotube membranes for water purification:A bright future in water desalination, Desalination 336(2014) 97-109.[32] M. Son, H.-g. Choi, L. Liu, E. Celik, H. Park, H. Choi, Efficacy of carbon nanotube positioning in the polyethersulfone support layer on the performance of thin-film composite membrane for desalination, Chem. Eng. J. 266(2015) 376-384.[33] M. Son, H. Park, L. Liu, H. Choi, J.H. Kim, H. Choi, Thin-film nanocomposite membrane with CNT positioning in support layer for energy harvesting from saline water, Chem. Eng. J. 284(2016) 68-77.[34] G.Z. Ramon, M.C.Y. Wong, E.M.V. Hoek, Transport through composite membrane, part 1:Is there an optimal support membrane? J. Membr. Sci. 415-416(2012) 298-305.[35] P.S. Singh, S.V. Joshi, J.J. Trivedi, C.V. Devmurari, A.P. Rao, P.K. Ghosh, Probing the structural variations of thin film composite RO membranes obtained by coating polyamide over polysulfone membranes of different pore dimensions, J. Membr. Sci. 278(1-2) (2006) 19-25.[36] L. Huang, J.R. McCutcheon, Impact of support layer pore size on performance of thin film composite membranes for forward osmosis, J. Membr. Sci. 483(2015) 25-33.[37] A. Tiraferri, N.Y. Yip, W.A. Phillip, J.D. Schiffman, M. Elimelech, Relating performance of thin-film composite forward osmosis membranes to support layer formation and structure, J. Membr. Sci. 367(1-2) (2011) 340-352.[38] A.K. Ghosh, E.M.V. Hoek, Impacts of support membrane structure and chemistry on polyamide-polysulfone interfacial composite membranes, J. Membr. Sci. 336(1-2) (2009) 140-148.[39] M. Fathizadeh, A. Aroujalian, A. Raisi, Effect of lag time in interfacial polymerization on polyamide composite membrane with different hydrophilic sub layers, Desalination 284(2012) 32-41.[40] M. Ehsan Yakavalangi, S. Rimaz, V. Vatanpour, Effect of surface properties of polysulfone support on the performance of thin film composite polyamide reverse osmosis membranes, J. Appl. Polym. Sci. 134(6) (2017) http://dx.doi.org/10.1002/app.44444.[41] Y. Wang, R. Ou, Q. Ge, H. Wang, T. Xu, Preparation of polyethersulfone/carbon nanotube substrate for high-performance forward osmosis membrane, Desalination 330(2013) 70-78.[42] W. Yan, Z. Wang, J. Wu, S. Zhao, J. Wang, S. Wang, Enhancing the flux of brackish water TFC RO membrane by improving support surface porosity via a secondary pore-forming method, J. Membr. Sci. 498(2016) 227-241.[43] S. Liang, G. Xu, Y. Jin, Z. Wu, Z. Cai, N. Zhao, Z. Wu, Annealing of supporting layer to develop nanofiltration membrane with high thermal stability and ion selectivity, J. Membr. Sci. 476(2015) 475-482.[44] M. Yasukawa, S. Mishima, Y. Tanaka, T. Takahashi, H. Matsuyama, Thin-film composite forward osmosis membrane with high water flux and high pressure resistance using a thicker void-free polyketone porous support, Desalination 402(2017) 1-9.[45] S.H. Maruf, A.R. Greenberg, Y. Ding, Influence of substrate processing and interfacial polymerization conditions on the surface topography and permselective properties of surface-patterned thin-film composite membranes, J. Membr. Sci. 512(2016) 50-60.[46] S.H. Maruf, A.R. Greenberg, J. Pellegrino, Y. Ding, Fabrication and characterization of a surface-patterned thin film composite membrane, J. Membr. Sci. 452(2014) 11-19.[47] P.G. de Gennes, Wetting:Statics and dynamics, Rev. Mod. Phys. 57(3) (1985) 827-863.[48] G. Bhutani, K. Muralidhar, S. Khandekar, Determination of apparent contact angle and shape of a static pendant drop on a physically textured inclined surface, 1(1) (2013) 29-49.[49] Y. Wang, W. Xing, N. Xu, Homoporous membranes, CIESC J. 67(1) (2016) 27-40(in Chinese).[50] Y. Fang, J. Leddy, Surface diffusion in microstructured, ion-exchange matrixes:Nafion/neutron track-etched polycarbonate membrane composites, J. Phys. Chem. 99(16) (1995) 6064-6073.[51] W. Lee, R. Ji, U. Gosele, K. Nielsch, Fast fabrication of long-range ordered porous alumina membranes by hard anodization, Nat. Mater. 5(9) (2006) 741-747.[52] W.A. Phillip, M.A. Hillmyer, E.L. Cussler, Cylinder orientation mechanism in block copolymer thin films upon solvent evaporation, Macromolecules 43(18) (2010) 7763-7770.[53] W.A. Phillip, B. O'Neill, M. Rodwogin, M.A. Hillmyer, E.L. Cussler, Self-assembled block copolymer thin films as water filtration membranes, ACS Appl. Mater. Interfaces 2(3) (2010) 847-853.[54] S.Y. Yang, I. Ryu, H.Y. Kim, J.K. Kim, S.K. Jang, T.P. Russell, Nanoporous membranes with ultrahigh selectivity and flux for the filtration of viruses, Adv. Mater. 18(6) (2006) 709-712.[55] K.-V. Peinemann, V. Abetz, P.F.W. Simon, Asymmetric superstructure formed in a block copolymer via phase separation, Nat. Mater. 6(12) (2007) 992-996.[56] V. Abetz, Isoporous block copolymer membranes, Macromol. Rapid Commun. 36(1) (2015) 10-22.[57] Y. Wang, Nondestructive creation of ordered nanopores by selective swelling of block copolymers:Toward homoporous membranes, Acc. Chem. Res. 49(7) (2016) 1401-1408.[58] L. Guo, L. Wang, Y. Wang, Stretched homoporous composite membranes with elliptic nanopores for external-energy-free ultrafiltration, Chem. Commun. 52(42) (2016) 6899-6902. |