Electroactive Materials Next-Generation Redox Flow Batteries

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Electroactive Materials Next-Generation Redox Flow Batteries ( electroactive-materials-next-generation-redox-flow-batteries )

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78. Hendriks, K. H.; Sevov, C. S.; Cook, M. E.; Sanford, M. S. Multielectron Cycling of a Low- Potential Anolyte in Alkali Metal Electrolytes for Nonaqueous Redox Flow Batteries. ACS Energy Lett. 2017, 2, 2430–2435. 79. Sevov, C. S.; Hickey, D. P.; Cook, M. E.; Robinson, S. G.; Barnett, S.; Minteer, S. D.; Sigman, M. S.; Sanford, M. S. Physical Organic Approach to Persistent, Cyclable, Low-Potential Electrolytes for Flow Battery Applications. J. Am. Chem. Soc. 2017, 139, 2924–2927. 80. Orita, A.; Verde, M. G.; Sakai, M.; Meng, Y. S. A Biomimetic Redox Flow Battery Based on Flavin Mononucleotide. Nat. Commun. 2016, 7, 13230. 81. Lin, K.; Gómez-Bombarelli, R.; Beh, E. S.; Tong, L.; Chen, Q.; Valle, A.; Aspuru-Guzik, A.; Aziz, M. J.; Gordon, R. G. A Redox-Flow Battery with an Alloxazine-Based Organic Electrolyte. Nat. Energy 2016, 1, 16102. 82. Hollas, A.; Wei, X.; Murugesan, V.; Nie, Z.; Li, B.; Reed, D.; Liu, J.; Sprenkle, V.; Wang, W. A Biomimetic High-Capacity Phenazine-Based Anolyte for Aqueous Organic Redox Flow Batteries. Nat. Energy 2018, 3, 508–514. 83. Wang, C.; Li, X.; Yu, B.; Wang, Y.; Yang, Z.; Wang, H.; Lin, H.; Ma, J.; Li, G.; Jin, Z. Molecular Design of Fused-Ring Phenazine Derivatives for Long-Cycling Alkaline Redox Flow Batteries. ACS Energy Lett. 2020, 5, 411–417. 84. Wei, X.; Duan, W.; Huang, J.; Zhang, L.; Li, B.; Reed, D.; Xu, W.; Sprenkle, V.; Wang, W. A High-Current, Stable Nonaqueous Organic Redox Flow Battery. ACS Energy Lett. 2016, 1, 705–711. 85. Zhang, C.; Qian, Y.; Ding, Y.; Zhang, L.; Guo, X.; Zhao, Y.; Yu, G. Biredox Eutectic Electrolytes Derived from Organic Redox-Active Molecules: High-Energy Storage Systems. Angew. Chem., Int. Ed. 2019, 131, 119–7124. 86. Yan, W.; Wang, C. X.; Tian, J. Q.; Zhu, G. Y.; Ma, L. B.; Wang, Y. R.; Chen, R. P.; Hu, Y.; Wang, L.; Chen, T.; Ma, J.; Jin, Z. All-Polymer Particulate Slurry Batteries. Nat. Commun. 2019, 10, 2513. 87. Wiberg, C.; Owusu, F.; Wang, E.; Ahlberg, E. Electrochemical Evaluation of a Napthalene Diimide Derivative for Potential Application in Aqueous Organic Redox Flow Batteries. Energy Technol. 2019, 7, 1900843. 88. Cong, G.; Wang, W.; Lai, N.-C.; Liang, Z.; Lu, Y.-C. A High-Rate and Long-Life Organic- Oxygen Battery. Nat. Mater. 2019, 18, 390–396. 89. Wang, G.; Huang, B.; Liu, D.; Zheng, D.; Harris, J.; Xue, J.; Qu, D. Exploring Polycyclic Aromatic Hydrocarbons as an Anolyte for Nonaqueous Redox Flow Batteries. J. Mater. Chem. A 2018, 6, 13286–13293. 90. Yu, J.; Hu, Y. S.; Pan, F.; Zhang, Z.; Wang, Q.; Li, H.; Huang, X.; Chen, L. A Class of Liquid Anode for Rechargeable Batteries with Ultralong Cycle Life. Nat. Commun. 2017, 8, 14629. 91. Laramie, S. M.; Milshtein, J. D.; Breault, T. M.; Brushett, F. R.; Thompson, L. T. Performance and Cost Characteristics of Multi-Electron Transfer, Common Ion Exchange Non-Aqueous Redox Flow Batteries. J. Power Sources 2016, 327, 681–692. 92. Matsuda, Y.; Tanaka, K.; Okada, M.; Takasu, Y.; Morita, M.; Matsumura-Inoue, T. A Rechargeable Redox Battery Utilizing Ruthenium Complexes with Non-Aqueous Organic Electrolyte. J. Appl. Electrochem. 1988, 18, 909–914. 45 Qin and Fan; Clean Energy Materials ACS Symposium Series; American Chemical Society: Washington, DC, 2020.

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Salgenx Redox Flow Battery Technology: Salt water flow battery technology with low cost and great energy density that can be used for power storage and thermal storage. Let us de-risk your production using our license. Our aqueous flow battery is less cost than Tesla Megapack and available faster. Redox flow battery. No membrane needed like with Vanadium, or Bromine. Salgenx flow battery

CONTACT TEL: 608-238-6001 Email: greg@salgenx.com (Standard Web Page)