Bringing Redox Flow Batteries to the Grid

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[221] [222] [223] [224] [225] [226] [227] [228] [229] [230] [231] [232] [233] [234] [235] B.H. Robb, S.E. Waters, M.P. Marshak, Evaluating aqueous flow battery electrolytes: a coordinated approach, Dalt. Trans. 49 (2020) 16047–16053. https://doi.org/10.1039/d0dt02462g. S.E. Waters, B.H. Robb, M.P. Marshak, M.P. Marshak, Effect of Chelation on Iron- Chromium Redox Flow Batteries, ACS Energy Lett. 5 (2020) 1758–1762. https://doi.org/10.1021/acsenergylett.0c00761. M. Keshavarz, A. Varadarajan, Preparation of flow cell battery electrolytes from raw materials, US 8,394,529 B2, 2013. J.T. Sullivan, Electrochemical-based purification of electrolyte solutions, and related systems and methods, US 10333164, 2019. https://patents.justia.com/patent/10333164. Z.M. Norman, A.B. Papandrew, R.C. Klet, M. Millard, Methods and devices for removing impurities from electrolytes, WO 2020/086645 A1, 2020. J. Friedl, U. Stimming, Determining Electron Transfer Kinetics at Porous Electrodes, Electrochim. Acta. 227 (2017) 235–245. https://doi.org/10.1016/j.electacta.2017.01.010. M. Heydari Gharahcheshmeh, C.T.C. Wan, Y. Ashraf Gandomi, K. V. Greco, A. Forner- Cuenca, Y.M. Chiang, F.R. Brushett, K.K. Gleason, Ultrathin Conformal oCVD PEDOT Coatings on Carbon Electrodes Enable Improved Performance of Redox Flow Batteries, Adv. Mater. Interfaces. 7 (2020) 1–11. https://doi.org/10.1002/admi.202000855. D.S. Cheng, A. Reiner, E. Hollax, Activation of hydrochloric acid-CrCl3 · 6H2 solutions with N-alkyfamines, J. Appl. Electrochem. 15 (1985) 63–70. https://doi.org/10.1007/BF00617741. N. Chen, H. Zhang, X.D. Luo, C.Y. Sun, SiO2-decorated graphite felt electrode by silicic acid etching for iron-chromium redox flow battery, Electrochim. Acta. 336 (2020) 135646. https://doi.org/10.1016/j.electacta.2020.135646. C.Y. Sun, H. Zhang, X.D. Luo, N. Chen, A comparative study of Nafion and sulfonated poly(ether ether ketone) membrane performance for iron-chromium redox flow battery, Ionics (Kiel). 25 (2019) 4219–4229. https://doi.org/10.1007/s11581-019-02971-0. H. Zhang, Y. Tan, X.D. Luo, C.Y. Sun, N. Chen, Polarization Effects of a Rayon and Polyacrylonitrile Based Graphite Felt for Iron-Chromium Redox Flow Batteries, ChemElectroChem. 6 (2019) 3175–3188. https://doi.org/10.1002/celc.201900518. H. Zhang, N. Chen, C. Sun, X. Luo, Investigations on physicochemical properties and electrochemical performance of graphite felt and carbon felt for iron-chromium redox flow battery, Int. J. Energy Res. 44 (2020) 3839–3853. https://doi.org/10.1002/er.5179. Y.K. Zeng, X.L. Zhou, L. Zeng, X.H. Yan, T.S. Zhao, Performance enhancement of iron- chromium redox flow batteries by employing interdigitated flow fields, J. Power Sources. 327 (2016) 258–264. https://doi.org/10.1016/j.jpowsour.2016.07.066. Z.P. Ifkovits, J.M. Evans, M.C. Meier, K.M. Papadantonakis, N.S. Lewis, Decoupled electrochemical water-splitting systems: A review and perspective, Energy Environ. Sci. 14 (2021) 4740–4759. https://doi.org/10.1039/d1ee01226f. K. V. Greco, A. Forner-Cuenca, A. Mularczyk, J. Eller, F.R. Brushett, Elucidating the 136

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