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10 References 52. Shi, Y., et al., Recent development of membrane for vanadium redox flow battery applications: A review. Applied energy, 2019. 238: p. 202-224. 53. Lourenssen, K., et al., Vanadium redox flow batteries: A comprehensive review. Journal of energy storage, 2019. 25: p. 100844. 54. Perry, M.L., R.M. Darling, and R. Zaffou. High power density redox flow battery cells. 2013. 55. Daintith, J., Oxford Dictionary of Chemistry. 6th ed. 2008. 56. Knehr, K.W. and E.C. Kumbur, Open circuit voltage of vanadium redox flow batteries: Discrepancy between models and experiments. Electrochemistry Communications, 2011. 13(4): p. 342-345. 57. Shah, A.A., et al., A dynamic unit cell model for the all-vanadium flow battery. Journal of the Electrochemical Society, 2011. 158(6): p. A671-A677. 58. Zoski, C.G., Handbook of electrochemistry. 1st ed. 2007, Amsterdam;Boston;: Elsevier. 59. Sutherland, W., LXXV. A dynamical theory of diffusion for non-electrolytes and the molecular mass of albumin. The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science, 1905. 9(54): p. 781-785. 60. University of Cambridge Department of Chemical Engineering and Biotechnology. Mass Transport. 2020 [cited 2017 17/07/20120]; Available from: https://www.ceb.cam.ac.uk/research/groups/rg-eme/Edu/mass-transport. 61. Tang, A., J. Bao, and M. Skyllas-Kazacos, Studies on pressure losses and flow rate optimization in vanadium redox flow battery. Journal of power sources, 2014. 248: p. 154-162. 62. Holland-Cunz, M.V., J. Friedl, and U. Stimming, Anion effects on the redox kinetics of positive electrolyte of the all-vanadium redox flow battery. Journal of Electroanalytical Chemistry, 2018. 819: p. 306-311. 63. Chin-Lung, H., et al., Effect of Compression Ratio of Graphite Felts on the Performance of an All-Vanadium Redox Flow Battery. Energies, 2019. 12(2). 131PDF Image | Electron Transfer Kinetics in Redox Flow Batteries
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