Progress in low cost redox flow batteries energy storage

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104 Natl Sci Rev, 2017, Vol. 4, No. 1 REVIEW 16. Grid-Scale Rampable Intermittent Dispatchable Storage ARPA-E Funding Op- portunity Announcement. Washington, DC. 2010. 38. Li X, Ponce de Leon C and Walsh F et al. Zinc-based flow batteries for medium- and large-scale energy storage. In: Menictas C, Skyllas-Kazacos M and Lim TM (eds). Advances in Batteries for Medium and Large-Scale Energy Storage, 1st edn, Types and Applications. Cambridge, GB, Woodhead Publishing, 2015, 293–315. 39. Weber AZ, Mench MM and Meyers JP et al. Redox flow batteries: a review. J Appl Electrochem 2011; 41: 1137–64. 40. Lu Y and Goodenough JB. Rechargeable alkali-ion cathode-flow battery. J Mater Chem 2011; 21: 10113–7. 41. Wang Y, Wang Y and Zhou H. A Li–liquid cathode battery based on a hybrid electrolyte. Chem Sus Chem 2011; 4: 1087–90. 42. Yang Y, Zheng G and Cui Y. A membrane-free lithium/polysulfide semi-liquid battery for large-scale energy storage. Energ Environ Sci 2013; 6: 1552–8. 43. Pan H, Wei X and Henderson WA et al. On the way toward understanding solu- tion chemistry of lithium polysulfides for high energy Li–S redox flow batteries. Adv Energy Mater 2015; 5: 1500113. 44. Li N, Weng Z and Wang Y et al. An aqueous dissolved polysulfide cathode for lithium–sulfur batteries. Energ Environ Sci 2014; 7: 3307–12. 45. Hock L. Power Up. http://www.rdmag.com/article/2015/09/power (23 January 2016, date last accessed). 46. Visco SJ, Nimon YS and Katz BD et al. Aqueous electrolyte lithium sulfur bat- teries. US Patent 8, 828,575, 2014. 47. Licht S. Aqueous solubilities, solubility products and standard oxidation- 17. Rastler D. Market Driven Distributed Energy Storage System Requirements for Load Management Applications. Palo Alto, CA: Electric Power Research Insti- tute, 2007. 18. Zhang M, Moore M and Watson J et al. Capital cost sensitivity analysis of an all-vanadium redox-flow battery. J Electrochem Soc 2012; 159: A1183–8. 19. Wei X, Xu W and Vijayakumar M et al. TEMPO-based catholyte for high-energy density nonaqueous redox flow batteries. Adv Mater 2014; 26: 7649–53. 20. Cho KT, Albertus P and Battaglia V et al. Optimization and analysis of high- power hydrogen/bromine-flow batteries for grid-scale energy storage. Energy Technol 2013; 1: 596–608. 21. Braff WA, Bazant MZ and Buie CR. Membrane-less hydrogen bromine flow bat- tery. Nat Commun 2013; 4: 2346. 22. Yang Z, Zhang J and Kintner-Meyer MC et al. Electrochemical energy storage for green grid. Chem Rev 2011; 111: 3577–613. 23. Thaller LH. Electrically Rechargeable Redox Flow Cells. NASA TM X-71540. Cleveland, Ohio: National Aeronautics and Space Administration, 1974. 24. Wang W, Kim S and Chen B et al. A new redox flow battery using Fe/V redox couples in chloride supporting electrolyte. Energ Environ Sci 2011; 4: 4068–73. 25. Lopezatalaya M, Codina G and Perez JR et al. Behavior of the Cr(III)/Cr(II) reac- tion on gold graphite-electrodes: application to redox flow storage cell. J Power Sources 1991; 35: 225–34. 26. Wang W, Nie Z and Chen B et al. A new Fe/V redox flow battery using a sulfu- ric/chloric mixed-acid supporting electrolyte. Adv Energy Mater 2012; 2: 487– 93. 27. Skyllas-kazacos M, Rychcik M and Robins RG et al. New all-vanadium redox flow cell. J Electrochem Soc 1986; 133: 1057–8. 28. Eckroad S. Vanadium redox flow batteries: an in-depth analysis. Palo Alto, CA: Electric Power Research Institute, 2007, 1014836. 29. Rahman F and Skyllas-Kazacos M. Vanadium redox battery: positive half-cell electrolyte studies. J Power Sources 2009; 189: 1212–9. 30. Rahman F and Skyllas-Kazacos M. Solubility of vanadyl sulfate in concentrated sulfuric acid solutions. J Power Sources 1998; 72: 105–10. 31. Kazacos M, Cheng M and Skyllas-Kazacos M. Vanadium redox cell electrolyte optimization studies. J Appl Electrochem 1990; 20: 463–7. 32. Eric Wesoff and John JS. Largest Capacity Flow Battery in North America and EU Is On-Line and Commissioned. http://www.greentechmedia.com/ articles/read/Largest-Capacity-Flow-Battery-in-North-America-and-EU-is- Online-and-Commiss (16 January 2017, date last accessed). 33. Haile SM. Fuel cell materials and components. Acta Mater 2003; 51: 5981– 6000. 34. Peighambardoust SJ, Rowshanzamir S and Amjadi M. Review of the proton exchange membranes for fuel cell applications. Int J Hydrogen Energy 2010; 35: 9349–84. 35. Rikukawa M and Sanui K. Proton-conducting polymer electrolyte membranes based on hydrocarbon polymers. Prog Polym Sci 2000; 25: 1463–502. 36. Wei X, Cosimbescu L and Xu W et al. Towards high-performance nonaque- ous redox flow electrolyte via ionic modification of active species. Adv Energy Mater 2015; 5: 1400678. 37. Li B, Nie Z and Vijayakumar M et al. Ambipolar zinc-polyiodide electrolyte for a high-energy density aqueous redox flow battery. Nat Commun 2015; 6: 6303. 48. 49. 50. 51. 52. 53. 54. 55. 56. 57. 58. 59. reduction potentials of the metal sulfides. J Electrochem Soc 1988; 135: 2971– 5. Lu Y, Goodenough JB and Kim Y. Aqueous cathode for next-generation alkali- ion batteries. J Am Chem Soc 2011; 133: 5756–9. Zhao Y, Wang L and Byon HR. High-performance rechargeable lithium-iodine batteries using triiodide/iodide redox couples in an aqueous cathode. Nat Com- mun 2013; 4: 1896. Zhao Y, Ding Y and Song J et al. A reversible Br2/Br− redox couple in the aqueous phase as a high-performance catholyte for alkali-ion batteries. Energ Environ Sci 2014; 7: 1990–5. Huskinson B, Marshak MP and Suh C et al. A metal-free organic-inorganic aqueous flow battery. Nature 2014; 505: 195–8. Yang B, Hoober-Burkhardt L and Wang F et al. An inexpensive aqueous flow battery for large-scale electrical energy storage based on water-soluble organic redox couples. J Electrochem Soc 2014; 161: A1371–A80. Chen Q, Gerhardt MR and Hartle L et al. A quinone-bromide flow battery with 1 W/cm2 power density. J Electrochem Soc 2016; 163: A5010–3. Chen Q, Eisenach L and Aziz MJ. Cycling analysis of a quinone-bromide redox flow battery. J Electrochem Soc 2016; 163: A5057–A63. Er S, Suh C and Marshak MP et al. Computational design of molecules for an all-quinone redox flow battery. Chem Sci 2015; 6: 885–93. Kaixiang Lin, Chen Qing and Michael R. Gerhardt et al. Alkaline quinone flow battery. Science 2015; 349: 1529–32. Lin K, Go ́mez-Bombarelli R and Beh ES et al. A redox-flow battery with an alloxazine-based organic electrolyte. Nat Energy 2016; 1: 16102. Liu T, Wei X and Nie Z et al. A total organic aqueous redox flow battery employ- ing low cost and sustainable methyl viologen (MV) anolyte and 4-HO-TEMPO catholyte. Adv Energy Mater 2016; 6: 1501449. Janoschka T, Martin N and Martin U et al. An aqueous, polymer-based redox- flow battery using non-corrosive, safe, and low-cost materials. Nature 2015; 527: 78–81. 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