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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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225. Mele, C., A. Bilotta, P. Bocchetta, and B. Bozzini, Characterization of the particulate anode of a laboratory flow Zn–air fuel cell. J. Appl. Electrochem., 2017; 47: 877-88. 226. Eos Energy Storage. Eos Technology. http://www.eosenergystorage.com/technology; 2017 [accessed 29.08.17]. 227. Amendola, S., M. Binder, P.J. Black, S. Sharp-Goldman, L. Johnson, M. Kunz, et al. Electrically rechargeable, metal-air battery systems and methods. US Patent application 2012/0021303 A1. 2012. 228. Técnicas Reunidas. ZAESS Energy Storage System. http://www.zaess.eu/; 2017 [accessed 29.08.17]. 229. Wen, Y.-H., J. Cheng, S.-Q. Ning, and Y.-S. Yang, Preliminary study on zinc–air battery using zinc regeneration electrolysis with propanol oxidation as a counter electrode reaction. J. Power Sources, 2009; 188: 301-7. 230. Schröder, D., T. Arlt, U. Krewer, and I. Manke, Analyzing transport paths in the air electrode of a zinc air battery using X-ray tomography. Electrochem. Commun., 2014; 40: 88-91. 231. Arlt, T., D. Schroder, U. Krewer, and I. Manke, In operando monitoring of the state of charge and species distribution in zinc air batteries using X-ray tomography and model-based simulations. Phys. Chem. Chem. Phys., 2014; 16: 22273-80. 232. Deiss, E., F. Holzer, and O. Haas, Modeling of an electrically rechargeable alkaline Zn–air battery. Electrochim. Acta, 2002; 47: 3995-4010. 233. Coates, D. and A. Charkey, Nickel-zinc batteries in Handbook of Batteries, 3rd Edition, T.B. Reddy D. Linden, Editor., McGraw-Hill; 2002. 234. Ito, Y., M. Nyce, R. Plivelich, M. Klein, and S. Banerjee, Gas evolution in a flow-assisted zinc–nickel oxide battery. J. Power Sources, 2011; 196: 6583-7. 235. Zhangjiagang Chilean electric power storage Fanghua Institute Co., Ltd. Zhangjiagang Smart Grid Fanghua Electrical Energy Storage Research Institute Co. Limited. http://www.zjgzdfh.com/; 2017 [accessed 29.08.17]. 236. Li, Z., C. Jie, Y. Yu-sheng, W. Yue-hua, W. Xin-dong, and C. Gao-ping, Study of zinc electrodes for single flow zinc/nickel battery application. J. Power Sources, 2008; 179: 381- 7. 237. Turney, D.E., M. Shmukler, K. Galloway, M. Klein, Y. Ito, T. Sholklapper, J.W. Gallaway, M. Nyce, and S. Banerhee, Development and testing of an economic grid-scale flow-assisted zinc/nickel-hydroxide alkaline battery. J. Power Sources, 2014; 264: 49-58. 238. Yuanhui, C., X. Xiaoli, L. Dan, L. Xianfeng, L. Qinzhi, and Z. Huamin, Performance and potential problems of high power density zinc-nickel single flow batteries. RSC Adv., 2015; 5: 1772-6. 78

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