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hybrid redox flow batteries with zinc negative electrodes

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hybrid redox flow batteries with zinc negative electrodes ( hybrid-redox-flow-batteries-with-zinc-negative-electrodes )

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91. Will, F.G., Bromine diffusion through Nafion® perfluorinated ion exchange membranes. J. Electrochem. Soc., 1979; 126: 36-43. 92. Li, M., H. Su, Q. Qiu, G. Zhao, Y. Sun, and W. Song, A quaternized polysulfone membrane for zinc-bromine redox flow battery. J. Chem., 2014; 15: 1-5. 93. Zhang, L., H. Zhang, Q. Lai, X. Li, and Y. Cheng, Development of carbon coated membrane for zinc/bromine flow battery with high power density. J. Power Sources, 2013; 227: 41-7. 94. Rajarathnam, G.P. and A.M. Vassallo, The Zinc/Bromine Flow Battery: Materials Challenges and Practical Solutions for Technology Advancement. 1st ed. Singapore: Springer Singapore. 2016. 95. Nagai, Y., R. Komiyama, H. Miyashita, and S.-S. Lee. Miniaturization of Zn/Br redox flow battery cell. In: IEEE 11th Annual International Conference on Nano/Micro Engineered and Molecular Systems (NEMS). 2016. 96. Wang, C., Q. Lai, P. Xu, D. Zheng, X. Li, and H. Zhang, Cage-like porous carbon with superhigh activity and Br2-complex-entrapping capability for bromine-based flow batteries. Adv. Mater., 2017; 29: 1605815. 97. Cathro, K.J., K. Cedzynska, and D.C. Constable, Preparation and performance of plastic- bonded-carbon bromine electrodes. J. Power Sources, 1987; 19: 337-56. 98. Jang, W.I., J.W. Lee, Y.M. Baek, and O.O. Park, Development of a PP/carbon/CNT composite electrode for the zinc/bromine redox flow battery. Macromol. Res., 2016; 24: 276-81. 99. Yang, H.S., J.H. Park, H.W. Ra, C.-S. Jin, and J.H. Yang, Critical rate of electrolyte circulation for preventing zinc dendrite formation in a zinc–bromine redox flow battery. J. Power Sources, 2016; 325: 446-52. 100. Kalu, E.E. and R.E. White, Zn/Br2 cell: Effects of plated zinc and complexing organic phase. AIChE Journal, 1991; 37: 1164-74. 101. Guillaume, P., N. Leclerc, C. Boulanger, J.M. Lecuire, and F. Lapicque, Investigation of optimal conditions for zinc electrowinning from aqueous sulfuric acid electrolytes. J. Appl. Electrochem., 2007; 37: 1237-43. 102. Pan, J., Y. Wen, J. Cheng, J. Pan, Z. Bai, and Y. Yang, Zinc deposition and dissolution in sulfuric acid onto a graphite–resin composite electrode as the negative electrode reactions in acidic zinc-based redox flow batteries. J. Appl. Electrochem., 2013; 43: 541-51. 103. Mackinnon, D.J., R.M. Morrison, J.E. Mouland, and P.E. Warren, The effects of antimony and glue on zinc electrowinning from Kidd Creek electrolyte. J. Appl. Electrochem., 1990; 20: 728-36. 104. Iacovangelo, C.D. and F.G. Will, Parametric study of zinc deposition on porous carbon in a flowing electrolyte cell. J. Electrochem. Soc., 1985; 132: 851-57. 69

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