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Electron Transfer Kinetics in Redox Flow Batteries

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Electron Transfer Kinetics in Redox Flow Batteries ( electron-transfer-kinetics-redox-flow-batteries )

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10 References 197. Sun, B. and M. Skyllas-Kazacos, Modification of graphite electrode materials for vanadium redox flow battery application-I. Thermal treatment. Electrochimica Acta, 1992. 37(7): p. 1253-1260. 198. Pupkevich, V., V. Glibin, and D. Karamanev, The effect of activation on the electrochemical behaviour of graphite felt towards the Fe3+/Fe2+ redox electrode reaction. Electrochemistry Communications, 2007. 9(8): p. 1924-1930. 199. Frysz, C.A. and D.D.L. Chung, Improving the electrochemical behavior of carbon black and carbon filaments by oxidation. Carbon, 1997. 35(8): p. 1111-1127. 200. 李晓刚 黄可龙 刘素琴 谭宁, 陈., Characteristics of graphite felt electrode electrochemically oxidized for vanadium redox battery application. 中国有色金属学 会会刊:英文版, 2007. 17(1): p. 195-199. 201. Sun, B. and M. Skyllas-Kazacos, Chemical modification of graphite electrode materials for vanadium redox flow battery application-part II. Acid treatments. Electrochimica Acta, 1992. 37(13): p. 2459-2465. 202. Wu, T., et al., Hydrothermal ammoniated treatment of PAN-graphite felt for vanadium redox flow battery. Journal of Solid State Electrochemistry, 2012. 16(2): p. 579-585. 203. Flox, C., et al., Thermo–chemical treatments based on NH3/O2 for improved graphite- based fiber electrodes in vanadium redox flow batteries. Carbon, 2013. 60: p. 280-288. 204. Rice, R.J. and R.L. McCreery, Quantitative relationship between electron transfer rate and surface microstructure of laser-modified graphite electrodes. Analytical Chemistry, 1989. 61(15): p. 1637-1641. 205. Rice, R.J., N.M. Pontikos, and R.L. McCreery, Quantitative correlations of heterogeneous electron-transfer kinetics with surface properties of glassy carbon electrodes. Journal of the American Chemical Society, 1990. 112(12): p. 4617-4622. 206. Rabbow, T.J., et al., Variability within a single type of polyacrylonitrile-based graphite felt after thermal treatment. Part I: physical properties. Electrochimica Acta, 2015. 173: p. 17-23. 144

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