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Progress in low cost redox flow batteries energy storage

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REVIEW Li and Liu 105 60. Zhao Y, Ding Y and Li Y et al. A chemistry and material perspective on lithium redox flow batteries towards high-density electrical energy storage. Chem Soc Rev 2015; 44: 7968–96. 61. Matsuda Y, Tanaka K and Okada M et al. A rechargeable redox battery utiliz- ing ruthenium complexes with non-aqueous organic electrolyte. J Appl Elec- trochem 1988; 18: 909–14. 62. Sleightholme AE, Shinkle AA and Liu Q et al. Non-aqueous manganese acety- lacetonate electrolyte for redox flow batteries. J Power Sources 2011; 196: 5742–5. 63. Liu Q, Shinkle AA and Li Y et al. Non-aqueous chromium acetylacetonate elec- trolyte for redox flow batteries. Electrochem Commun 2010; 12: 1634–7. 64. Liu Q, Sleightholme AE and Shinkle AA et al. Non-aqueous vanadium acety- lacetonate electrolyte for redox flow batteries. Electrochem Commun 2009; 11: 2312–5. 65. Mun J, Lee M-J and Park J-W et al. 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