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Bringing Redox Flow Batteries to the Grid

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Bringing Redox Flow Batteries to the Grid ( bringing-redox-flow-batteries-grid )

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[112] [113] [114] [115] [116] [117] [118] [119] [120] [121] [122] [123] [124] L. Su, A.F. Badel, C. Cao, J.J. Hinricher, F.R. Brushett, Toward an Inexpensive Aqueous Polysulfide−Polyiodide Redox Flow Battery, Ind. Eng. Chem. Res. (2017) 9783–9792. https://doi.org/10.1021/acs.iecr.7b01476. X. Wei, G. Xia, B. Kirby, E. Thomsen, B. Li, Z. Nie, G.G. Graff, J. Liu, V. Sprenkle, W. Wang, An Aqueous Redox Flow Battery Based on Neutral Alkali Metal Ferri / ferrocyanide and Polysulfide Electrolytes, J. Electrochem. Soc. 163 (2016) 5150–5153. https://doi.org/10.1149/2.0221601jes. M.C. Wu, T.S. Zhao, H.R. Jiang, Y.K. Zeng, Y.X. Ren, High-performance zinc bromine flow battery via improved design of electrolyte and electrode, J. Power Sources. 355 (2017) 62–68. https://doi.org/10.1016/j.jpowsour.2017.04.058. E. Allcorn, G. Nagasubramanian, H.D.P. Iii, E. Spoerke, D. Ingersoll, Elimination of active species crossover in a room temperature, neutral pH, aqueous flow battery using a ceramic NaSICON membrane, J. Power Sources. 378 (2018) 353–361. https://doi.org/10.1016/j.jpowsour.2017.12.041. Y.Wang,Y.Wang,H.Zhou,ALi–LiquidCathodeBatteryBasedonaHybridElectrolyte, ChemSusChem. 4 (2011) 1087–1090. https://doi.org/10.1002/cssc.201100201. N. Xu, X. Li, X. Zhao, J.B. Goodenough, K. Huang, A novel solid oxide redox flow battery for grid energy storage, Energy Environ. Sci. 4 (2011) 4942–4946. https://doi.org/10.1039/c1ee02489b. C. Stolze, C. Schmerbauch, C. Friebe, U.S. Schubert, A Tubular Polymer Redox Flow Battery with a Ceramic Membrane, Energy Technol. (2017) 225–227. https://doi.org/10.1002/ente.201600304. Q. Huang, Q. Wang, Next-Generation, High-Energy-Density Redox Flow Batteries, Chempluschem. 80 (2015) 312–322. https://doi.org/10.1002/cplu.201402099. K.E. Rodby, M.L. Perry, F.R. Brushett, Assessing capacity loss remediation methods for asymmetric redox flow battery chemistries using levelized cost of storage, J. Power Sources. 506 (2021) 230085. https://doi.org/10.1016/j.jpowsour.2021.230085. R.F. Gahn, N.H. Hagedorn, J.A. Johnson, Cycling Performace of the Iron- Chromium Redox Energy Storage System Conservation and Renewable Energy, Nasa Tm-87034. (1985). S.Wang,Z.Xu,X.Wu,H.Zhao,J.Zhao,J.Liu,C.Yan,X.Fan,Analysesandoptimization of electrolyte concentration on the electrochemical performance of iron-chromium flow battery, Appl. Energy. 271 (2020) 115252. https://doi.org/10.1016/j.apenergy.2020.115252. R.F. Schulte, B.N. Bryden, Mineral Industry Surveys: Chromium December 2020, 2020. https://prd-wret.s3.us-west- 2.amazonaws.com/assets/palladium/production/atoms/files/mis-202012-chrom.pdf. Z.Li,M.S.Pan,L.Su,P.C.Tsai,A.F.Badel,J.M.Valle,S.L.Eiler,K.Xiang,F.R.Brushett, Y.M. Chiang, Air-Breathing Aqueous Sulfur Flow Battery for Ultralow-Cost Long- Duration Electrical Storage, Joule. 1 (2017) 306–327. https://doi.org/10.1016/j.joule.2017.08.007. 128

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