Redox Flow Batteries Concepts Chemistries

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Redox Flow Batteries Concepts Chemistries ( redox-flow-batteries-concepts-chemistries )

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electrochemical properties, Inorganica Chim. Acta. 396 (2013) 7883. doi:10.1016/j.ica.2012.10.005. [83] H. Prifti, A. Parasuraman, S. Winardi, T.M. Lim, M. Skyllas-Kazacos, Membranes for redox flow battery applications, Membranes (Basel). 2 (2012) 275306. doi:10.3390/membranes2020275. [84] S. Maurya, S.-H. Shin, Y. Kim, S.-H. Moon, A review on recent developments of anion exchange membranes for fuel cells and redox flow batteries, RSC Adv. 5 (2015) 3720637230. doi:10.1039/C5RA04741B. [85] Z. Tang, Characterization Techniques and Electrolyte Separator Performance Investigation for All Vanadium Redox Flow Battery, University of Tennessee, Knoxville, 2013. [86] T. Mohammadi, M.S. Kazacos, Modification of anion-exchange membranes for vanadium redox flow battery applications, J. Power Sources. 63 (1996) 179186. doi:10.1016/S0378-7753(96)02463-9. [87] T. Mohammadi, M. Skyllas-Kazacos, Characterisation of novel composite membrane for redox flow battery applications, J. Memb. Sci. 98 (1995) 7787. doi:10.1016/0376- 7388(94)00178-2. [88] T. Mohammadi, S.C. Chieng, M. Skyllas Kazacos, Water transport study across commercial ion exchange membranes in the vanadium redox flow battery, J. Memb. Sci. 133 (1997) 151159. doi:10.1016/S0376-7388(97)00092-6. [89] Z. Yuan, Y. Duan, H. Zhang, X. Li, H. Zhang, I. Vankelecom, Advanced porous membranes with ultra-high selectivity and stability for Vanadium flow battery, Energy Environ. Sci. 9 (2015) 2224. doi:10.1039/C5EE02896E. [90] T. Janoschka, N. Martin, U. Martin, C. Friebe, S. Morgenstern, H. Hiller, M.D. Hager, U.S. Schubert, An aqueous, polymer-based redox-flow battery using non-corrosive, safe, and low-cost materials, Nature. 527 (2015) 7881. doi:10.1038/nature15746. [91] K.. Cathro, K. Cedzynska, D.C. Constable, P.M. Hoobin, SELECTION OF QUATERNARY Page 55 of 63

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