Organic Redox Flow Batteries 2023

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[57] E. Sum and M. Skyllas-Kazacos, ‘A study of the V(II)/V(III) redox couple for redox flow cell applications’, Journal of Power Sources, vol. 15, no. 2, pp. 179–190, 1985. [58] E. Sum, M. Rychcik and M. Skyllas-kazacos, ‘Investigation of the V(V)/V(IV) sys- tem for use in the positive half-cell of a redox battery’, Journal of Power Sources, vol. 16, no. 2, pp. 85–95, 1985. [59] R. Kuwertz, C. Kirstein, T. Turek and U. Kunz, ‘Influence of acid pretreatment on ionic conductivity of Nafion® membranes’, Journal of Membrane Science, vol. 500, pp. 225–235, 2016. [60] B. Jiang, L. Yu, L. Wu, D. Mu, L. Liu, J. Xi and X. Qiu, ‘Insights into the Impact of the Nafion Membrane Pretreatment Process on Vanadium Flow Battery Per- formance’, ACS Applied Materials & Interfaces, vol. 8, no. 19, pp. 12228–12238, 2016. [61] M. R. Gerhardt, A. A. Wong and M. J. Aziz, ‘The Effect of Interdigitated Channel and Land Dimensions on Flow Cell Performance’, Journal of The Electrochemical Society, vol. 165, no. 11, pp. A2625–A2643, 2018. [62] Allen J. Bard and Larry R. Faulkner, Electrochemical Methods: Fundamentals and Applications, Second. John Wiley & Sons, 2000. [63] T. J. Carney, S. J. Collins, J. S. Moore and F. R. Brushett, ‘Concentration-Dependent Dimerization of Anthraquinone Disulfonic Acid and Its Impact on Charge Storage’, Chemistry of Materials, vol. 29, no. 11, pp. 4801–4810, 2017. [64] M.-A. Goulet and M. J. Aziz, ‘Flow Battery Molecular Reactant Stability Determi- ned by Symmetric Cell Cycling Methods’, Journal of The Electrochemical Society, vol. 165, no. 7, pp. A1466–A1477, 2018. [65] E. S. Beh, D. De Porcellinis, R. L. Gracia, K. T. Xia, R. G. Gordon and M. J. Aziz, ‘A Neutral pH Aqueous Organic–Organometallic Redox Flow Battery with Extremely High Capacity Retention’, ACS Energy Letters, vol. 2, no. 3, pp. 639– 644, 2017. [66] Q. Chen, M. R. Gerhardt and M. J. Aziz, ‘Dissection of the Voltage Losses of an Acidic Quinone Redox Flow Battery’, Journal of The Electrochemical Society, vol. 164, no. 6, pp. A1126–A1132, 2017. [67] A. Lasia, Electrochemical Impedance Spectroscopy and its Applications. New York, USA: Springer, 2014. [68] B. Hirschorn, M. E. Orazem, B. Tribollet, V. Vivier, I. Frateur and M. Musiani, ‘De- termination of effective capacitance and film thickness from constant-phase-element parameters’, Electrochimica Acta, vol. 55, no. 21, pp. 6218–6227, 2010. [69] R. de Levie, ‘On porous electrodes in electrolyte solutions’, Electrochimica Acta, vol. 8, no. 10, pp. 751–780, 1963. [70] K. B. Knudsen, ‘Alkali Metal-O2 Batteries Performance and Lifetime Limiting Ef- fects’, Ph.D. Thesis, Technical University of Denmark, Risø, Denmark, 2016. [71] G. Paasch, K. Micka and P. Gersdorf, ‘Theory of the electrochemical impedance of macrohomogeneous porous electrodes’, Electrochimica Acta, vol. 38, no. 18, pp. 2653– 2662, 1993. [72] C.-N. Sun, F. M. Delnick, D. S. Aaron, A. B. Papandrew, M. M. Mench and T. A. Zawodzinski, ‘Resolving Losses at the Negative Electrode in All-Vanadium Redox Flow Batteries Using Electrochemical Impedance Spectroscopy’, Journal of The Electrochemical Society, vol. 161, no. 6, pp. A981–A988, 2014. [73] A. M. Pezeshki, R. L. Sacci, F. M. Delnick, D. S. Aaron and M. M. Mench, ‘Elu- cidating effects of cell architecture, electrode material, and solution composition on Bibliography 123

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