Redox flow batteries for energy storage challenges

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Redox flow batteries for energy storage challenges ( redox-flow-batteries-energy-storage-challenges )

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[90] •• P. Leung, A.A. Shah, L. Sanz, C. Flox, J.R. Morante, Q. Xu, et al., Recent developments in organic redox flow batteries: A critical review, J. Power Sources. 360 (2017) 243–283. doi:10.1016/j.jpowsour.2017.05.057. Presents a recent, critical summary of activity in organic and non-aqueous systems and identifies areas needing further research. [91] [92] [93] [94] [95] [96] • C. Zhang, L. Zhang, Y. Ding, X. Guo, G. Yu, Eutectic electrolytes for high- energy-density redox flow batteries, ACS Energy Lett. 3 (2018) 2875–2883. doi:10.1021/acsenergylett.8b01899. E.S. Beh, D. De Porcellinis, R.L. Gracia, K.T. Xia, R.G. Gordon, M.J. Aziz, A neutral pH aqueous organic–organometallic redox flow battery with extremely high capacity retention, ACS Energy Lett. 2 (2017) 639–644. B. Hu, C. DeBruler, Z. Rhodes, T.L. Liu, Long-cycling aqueous organic redox flow battery (AORFB) toward sustainable and safe energy storage, J. Am. Chem. Soc. 139 (2017) 1207–1214. doi:10.1021/jacs.6b10984. I.L. Escalante-García, J.S. Wainright, L.T. Thompson, R.F. Savinell, Performance of a non-aqueous vanadium acetylacetonate prototype redox flow battery: Examination of separators and capacity decay, J. Electrochem. Soc. 162 (2015) A363–A372. doi:10.1149/2.0471503jes. J.D. Saraidaridis, C.W. Monroe, Nonaqueous vanadium disproportionation flow batteries with porous separators cycle stably and tolerate high current density, J. Power Sources. 412 (2019) 384–390. doi:10.1016/j.jpowsour.2018.11.058. M.J. Watt-Smith, P. Ridley, R.G.A. Wills, A.A. Shah, F.C. Walsh, The importance of key operational variables and electrolyte monitoring to the performance of an all vanadium redox flow battery, J. Chem. Technol. Biotechnol. 88 (2012) 126–138. doi:10.1002/jctb.3870. Considers monitoring of electrolyte redox potential and the effect of operational conditions (current density and flow velocity) plus a validated charge- discharge model over numerous cycles. [97] I. Derr, M. Bruns, J. Langner, A. Fetyan, J. Melke, C. Roth, Degradation of all- vanadium redox flow batteries (VRFB) investigated by electrochemical impedance and X-ray photoelectron spectroscopy: Part 2 electrochemical degradation. J Power Sources. 325 (2016) 351-359. http://dx.doi.org/10.1016/j.jpowsour.2016.06.040 25

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