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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63. Gerhardt, M. R.; Tong, L. C.; Gómez-Bombarelli, R.; Chen, Q.; Marshak, M. P.; Galvin, C. J.; Aspuru-Guzik, A.; Gordon, R. G.; Aziz, M. J. Anthraquinone Derivatives in Aqueous Flow Batteries. Adv. Energy Mater. 2017, 7, 1601488. 64. Hu, B. H.; Luo, J. L.; Hu, M.; Yuan, B. Y.; Liu, T. L. A pH-Neutral, Metal-Free Aqueous Organic Redox Flow Battery Employing an Ammonium Anthraquinone Anolyte. Angew. Chem., Int. Ed. 2019, 58, 16629–16636. 65. Jin, S.; Jing, Y.; Kwabi, D. G.; Ji, Y.; Tong, L.; De Porcellinis, D.; Goulet, M.-A.; Pollack, D. A.; Gordon, R. G.; Aziz, M. J. A Water-Miscible Quinone Flow Battery with High Volumetric Capacity and Energy Density. ACS Energy Lett. 2019, 4, 1342–1348. 66. Ding, Y.; Li, Y.; Yu, G. Exploring Bio-Inspired Quinone-Based Organic Redox Flow Batteries: A Combined Experimental and Computational Study. Chem 2016, 1, 790–801. 67. Beck, F.; Heydecke, G. On the Mechanism of the Cathodic Reduction of Anthraquinone to Anthrone. Ber. Bunsen-Ges. Phys. Chem. 1987, 91, 37–43. 68. Liu, T.; Wei, X.; Nie, Z.; Sprenkle, V.; Wang, W. A Total Organic Aqueous Redox Flow Battery Employing a Low Cost and Sustainable Methyl Viologen Anolyte and 4-HO-TEMPO Catholyte. Adv. Energy Mater. 2016, 6, 1501449. 69. Liu, Y.; Goulet, M. A.; Tong, L.; Liu, Y.; Ji, Y.; Wu, L.; Gordon, R. G.; Aziz, M. J.; Yang, Z.; Xu, T. A Long-Lifetime All-Organic Aqueous Flow Battery Utilizing TMAP-TEMPO Radical. Chem 2019, 5, 1861–1870. 70. Chai, J.; Lashgari, A.; Cao, Z.; Williams, C. K.; Wang, X.; Dong, J.; Jiang, J. PEGylation- Enabled Extended Cyclability of a Non-Aqueous Redox Flow Battery. ACS Appl. Mater. Interfaces 2020, 12, 15262–15270. 71. Chai, J.; Lashgari, A.; Wang, X.; Williams, C. K.; Jiang, J. All-PEGylated Redox-Active Metal- Free Organic Molecules in Non-Aqueous Redox Flow Battery. J. Mater. Chem. A 2020, 8, 15715–15724. 72. Montoto, E. C.; Nagarjuna, G.; Moore, J. S.; Rodríguez-López, J. Redox Active Polymers for Non-Aqueous Redox Flow Batteries: Validation of the Size-Exclusion Approach. J. Electrochem. Soc. 2017, 164, A1688–A1694. 73. Burgess, M.; Hernández-Burgos, K.; Simpson, B. H.; Lichtenstein, T.; Avetian, S.; Nagarjuna, G.; Cheng, K. J.; Moore, J. S.; Rodríguez-López, J. Scanning Electrochemical Microscopy and Hydrodynamic Voltammetry Investigation of Charge Transfer Mechanisms on Redox Active Polymers. J. Electrochem. Soc. 2016, 163, H3003–H3013. 74. Burgess, M.; Chénard, E.; Hernández-Burgos, K.; Nagarjuna, G.; Assary, R. S.; Hui, J.; Moore, J. S.; Rodríguez-López, J. Impact of Backbone Tether Length and Structure on the Electrochemical Performance of Viologen Redox Active Polymers. Chem. Mater. 2016, 28, 7362–7374. 75. Burgess, M.; Moore, J. S.; Rodríguez-López, J. Redox Active Polymers as Soluble Nanomaterials for Energy Storage. Acc. Chem. Res. 2016, 49, 2649–2657. 76. Luo, J.; Wu, W.; DeBruler, C. R.; Hu, B.; Hu, M.; Liu, T. A 1.51 V pH Neutral Redox Flow Battery Towards Scalable Energy Storage. J. Mater. Chem. A 2019, 7, 9130–9136. 77. Sevov, C. S.; Hendriks, K. H.; Sanford, M. S. Low-Potential Pyridinium Anolyte for Aqueous Redox Flow Batteries. J. Phys. Chem. C 2017, 121, 24376–24380. 44 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)