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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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[9] L.F. Arenas, A. Loh, D.P. Trudgeon, X. Li, C. Ponce de León, F.C. Walsh, The characteristics and performance of hybrid redox flow batteries with zinc negative electrodes for energy storage, Renew. Sust. Energ. Rev. 90 (2018) 992–1016. doi:10.1016/j.rser.2018.03.016. [10] X. Wei, W. Pan, W. Duan, A. Hollas, Z. Yang, B. Li, et al., Materials and systems for organic redox flow batteries: Status and challenges, ACS Energy Lett. 2 (2017) 2187–2204. doi:10.1021/acsenergylett.7b00650. [11] • • L.F. Arenas, C. Ponce de León, F.C. Walsh, Engineering aspects of the design, construction and performance of modular redox flow batteries for energy storage, J. Energy Storage. 11 (2017) 119–153. doi:10.1016/j.est.2017.02.007. A review summarizing general principles of flow battery technology and performance from an electrochemical engineering perspective. [12] [13] [14] • L.F. Arenas, C. Ponce de León, F.C. Walsh, Mass transport and active area of porous Pt/Ti electrodes for the Zn-Ce redox flow battery determined from limiting current measurements, Electrochim. Acta. 221 (2016) 154–166. doi:10.1016/j.electacta.2016.10.097. A.A. Abahussain, C. Ponce de León, F.C. Walsh, Mass-transfer measurements at porous 3D Pt-Ir/Ti electrodes in a direct borohydride fuel cell, J. Electrochem. Soc. 165 (2018) F198–F206. doi:10.1149/2.0751803jes. L.F. Arenas, C. Ponce de León, F.C. Walsh, Pressure drop through platinized titanium porous electrodes for cerium‐based redox flow batteries, AIChE J. 64 (2018) 1135–1146. doi:10.1002/aic.16000. A study linking volumetric mass transfer coefficient to pressure drop as an indication of cost-benefit estimations and feasibility of scale-up. [15] X. You, Q. Ye, P. Cheng, The dependence of mass transfer coefficient on the electrolyte velocity in carbon felt electrodes: Determination and validation, J. Electrochem. Soc. 164 (2017) E3386–E3394. doi:10.1149/2.0401711jes. [16] Q. Xu, T.S. Zhao, Determination of the mass-transport properties of vanadium ions through the porous electrodes of vanadium redox flow batteries, Phys. Chem. Chem. Phys. 15 (2013) 10841–8. doi:10.1039/c3cp51944a. [17] D.S. Aaron, Q. Liu, Z. Tang, G.M. Grim, A.B. Papandrew, A. Turhan, et al., Dramatic performance gains in vanadium redox flow batteries through modified 16

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