(en) Maria Skyllas-Kazacos, Liuyue Cao, Michael Kazacos et Nadeem Kausar, « Vanadium Electrolyte Studies for the Vanadium Redox Battery—A Review », ChemSusChem, vol. 9, no 13, , p. 1521–1543 (ISSN1864-564X, DOI10.1002/cssc.201600102, lire en ligne, consulté le )
(en) Wei Wang, Qingtao Luo, Bin Li et Xiaoliang Wei, « Recent Progress in Redox Flow Battery Research and Development », Advanced Functional Materials, vol. 23, no 8, , p. 970–986 (DOI10.1002/adfm.201200694, lire en ligne, consulté le )
(en) Wenyue Li, Jianguo Liu et Chuanwei Yan, « Graphite–graphite oxide composite electrode for vanadium redox flow battery », Electrochimica Acta, vol. 56, no 14, , p. 5290–5294 (ISSN0013-4686, DOI10.1016/j.electacta.2011.02.083, lire en ligne, consulté le )
(en) J. Sun, M. C. Wu, X. Z. Fan et Y. H. Wan, « Aligned microfibers interweaved with highly porous carbon nanofibers: A Novel electrode for high-power vanadium redox flow batteries », Energy Storage Materials, vol. 43, , p. 30–41 (ISSN2405-8297, DOI10.1016/j.ensm.2021.08.034, lire en ligne, consulté le )
(en) H. Q. Zhu, Y. M. Zhang, L. Yue et W. S. Li, « Graphite–carbon nanotube composite electrodes for all vanadium redox flow battery », Journal of Power Sources, selected papers from the: International Battery Materials Association 2007 Conference. In Memoriam of Juergen Besenhard, vol. 184, no 2, , p. 637–640 (ISSN0378-7753, DOI10.1016/j.jpowsour.2008.04.016, lire en ligne, consulté le )
Sebastiano Bellani, Leyla Najafi, Mirko Prato et Reinier Oropesa-Nuñez, « Graphene-Based Electrodes in a Vanadium Redox Flow Battery Produced by Rapid Low-Pressure Combined Gas Plasma Treatments », Chemistry of Materials, vol. 33, no 11, , p. 4106–4121 (ISSN0897-4756, PMID34267420, PMCIDPMC8274967, DOI10.1021/acs.chemmater.1c00763, lire en ligne, consulté le )
(en) Ping Zhao, Huamin Zhang, Hantao Zhou et Baolian Yi, « Nickel foam and carbon felt applications for sodium polysulfide/bromine redox flow battery electrodes », Electrochimica Acta, vol. 51, no 6, , p. 1091–1098 (ISSN0013-4686, DOI10.1016/j.electacta.2005.06.008, lire en ligne, consulté le )
(en) Metin Gencten et Yucel Sahin, « A critical review on progress of the electrode materials of vanadium redox flow battery », International Journal of Energy Research, vol. 44, no 10, , p. 7903–7923 (ISSN1099-114X, DOI10.1002/er.5487, lire en ligne, consulté le )
(en) Zhangxing He, Gang Cheng, Yingqiao Jiang et Ling Wang, « Sulfonated Carbon Nanotubes as Superior Catalysts towards V 3+ /V 2+ Redox Reaction for Vanadium Redox Flow Battery », Journal of The Electrochemical Society, vol. 165, no 5, , A932–A938 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.0751805jes, lire en ligne, consulté le )
(en) Zhangxing He, Yingqiao Jiang, Yuehua Li et Jing Zhu, « Carbon layer-exfoliated, wettability-enhanced, SO3H-functionalized carbon paper: A superior positive electrode for vanadium redox flow battery », Carbon, vol. 127, , p. 297–304 (ISSN0008-6223, DOI10.1016/j.carbon.2017.11.006, lire en ligne, consulté le )
(en) Wenyue Li, Jianguo Liu et Chuanwei Yan, « Multi-walled carbon nanotubes used as an electrode reaction catalyst for VO2+/VO2+ for a vanadium redox flow battery », Carbon, vol. 49, no 11, , p. 3463–3470 (ISSN0008-6223, DOI10.1016/j.carbon.2011.04.045, lire en ligne, consulté le )
(en) Rong-Hsin Huang, Chung-Hsing Sun, Tung-mo Tseng et Wen-kai Chao, « Investigation of Active Electrodes Modified with Platinum/Multiwalled Carbon Nanotube for Vanadium Redox Flow Battery », Journal of The Electrochemical Society, vol. 159, no 10, , A1579–A1586 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.003210jes, lire en ligne, consulté le )
(en) G. Hernandez-Flores, H.M. Poggi-Varaldo et O. Solorza-Feria, « Comparison of alternative membranes to replace
high cost Nafion ones in microbial fuel cells », International Journal of Hydrogen Energy, vol. 41, , p. 23354-23362, article no 48 (DOIhttps://doi.org/10.1016/j.ijhydene.2016.08.206, lire en ligne [PDF])
(en) Georgios Nikiforidis, Amal Belhcen et Mérièm Anouti, « A highly concentrated vanadium protic ionic liquid electrolyte for the vanadium redox flow battery », Journal of Energy Chemistry, vol. 57, , p. 238–246 (ISSN2095-4956, DOI10.1016/j.jechem.2020.09.001, lire en ligne, consulté le )
(en) M. A. Miller, J. S. Wainright et R. F. Savinell, « Communication—Iron Ionic Liquid Electrolytes for Redox Flow Battery Applications », Journal of The Electrochemical Society, vol. 163, no 3, , A578–A579 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.0061605jes, lire en ligne, consulté le )
(en) Zheng Li, Kyle C. Smith, Yajie Dong et Nir Baram, « Aqueous semi-solid flow cell: demonstration and analysis », Physical Chemistry Chemical Physics, vol. 15, no 38, , p. 15833–15839 (ISSN1463-9084, DOI10.1039/C3CP53428F, lire en ligne, consulté le )
(en) Mihai Duduta, Bryan Ho, Vanessa C. Wood et Pimpa Limthongkul, « Semi-Solid Lithium Rechargeable Flow Battery », Advanced Energy Materials, vol. 1, no 4, , p. 511–516 (DOI10.1002/aenm.201100152, lire en ligne, consulté le )
doi.org
Sebastiano Bellani, Leyla Najafi, Mirko Prato et Reinier Oropesa-Nuñez, « Graphene-Based Electrodes in a Vanadium Redox Flow Battery Produced by Rapid Low-Pressure Combined Gas Plasma Treatments », Chemistry of Materials, vol. 33, no 11, , p. 4106–4121 (ISSN0897-4756, PMID34267420, PMCIDPMC8274967, DOI10.1021/acs.chemmater.1c00763, lire en ligne, consulté le )
(en) Zhangxing He, Gang Cheng, Yingqiao Jiang et Ling Wang, « Sulfonated Carbon Nanotubes as Superior Catalysts towards V 3+ /V 2+ Redox Reaction for Vanadium Redox Flow Battery », Journal of The Electrochemical Society, vol. 165, no 5, , A932–A938 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.0751805jes, lire en ligne, consulté le )
(en) Rong-Hsin Huang, Chung-Hsing Sun, Tung-mo Tseng et Wen-kai Chao, « Investigation of Active Electrodes Modified with Platinum/Multiwalled Carbon Nanotube for Vanadium Redox Flow Battery », Journal of The Electrochemical Society, vol. 159, no 10, , A1579–A1586 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.003210jes, lire en ligne, consulté le )
(en) M. A. Miller, J. S. Wainright et R. F. Savinell, « Communication—Iron Ionic Liquid Electrolytes for Redox Flow Battery Applications », Journal of The Electrochemical Society, vol. 163, no 3, , A578–A579 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.0061605jes, lire en ligne, consulté le )
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(en) Maria Skyllas-Kazacos, Liuyue Cao, Michael Kazacos et Nadeem Kausar, « Vanadium Electrolyte Studies for the Vanadium Redox Battery—A Review », ChemSusChem, vol. 9, no 13, , p. 1521–1543 (ISSN1864-564X, DOI10.1002/cssc.201600102, lire en ligne, consulté le )
(en) Wenyue Li, Jianguo Liu et Chuanwei Yan, « Graphite–graphite oxide composite electrode for vanadium redox flow battery », Electrochimica Acta, vol. 56, no 14, , p. 5290–5294 (ISSN0013-4686, DOI10.1016/j.electacta.2011.02.083, lire en ligne, consulté le )
(en) J. Sun, M. C. Wu, X. Z. Fan et Y. H. Wan, « Aligned microfibers interweaved with highly porous carbon nanofibers: A Novel electrode for high-power vanadium redox flow batteries », Energy Storage Materials, vol. 43, , p. 30–41 (ISSN2405-8297, DOI10.1016/j.ensm.2021.08.034, lire en ligne, consulté le )
(en) H. Q. Zhu, Y. M. Zhang, L. Yue et W. S. Li, « Graphite–carbon nanotube composite electrodes for all vanadium redox flow battery », Journal of Power Sources, selected papers from the: International Battery Materials Association 2007 Conference. In Memoriam of Juergen Besenhard, vol. 184, no 2, , p. 637–640 (ISSN0378-7753, DOI10.1016/j.jpowsour.2008.04.016, lire en ligne, consulté le )
Sebastiano Bellani, Leyla Najafi, Mirko Prato et Reinier Oropesa-Nuñez, « Graphene-Based Electrodes in a Vanadium Redox Flow Battery Produced by Rapid Low-Pressure Combined Gas Plasma Treatments », Chemistry of Materials, vol. 33, no 11, , p. 4106–4121 (ISSN0897-4756, PMID34267420, PMCIDPMC8274967, DOI10.1021/acs.chemmater.1c00763, lire en ligne, consulté le )
(en) Ping Zhao, Huamin Zhang, Hantao Zhou et Baolian Yi, « Nickel foam and carbon felt applications for sodium polysulfide/bromine redox flow battery electrodes », Electrochimica Acta, vol. 51, no 6, , p. 1091–1098 (ISSN0013-4686, DOI10.1016/j.electacta.2005.06.008, lire en ligne, consulté le )
(en) Metin Gencten et Yucel Sahin, « A critical review on progress of the electrode materials of vanadium redox flow battery », International Journal of Energy Research, vol. 44, no 10, , p. 7903–7923 (ISSN1099-114X, DOI10.1002/er.5487, lire en ligne, consulté le )
(en) Zhangxing He, Gang Cheng, Yingqiao Jiang et Ling Wang, « Sulfonated Carbon Nanotubes as Superior Catalysts towards V 3+ /V 2+ Redox Reaction for Vanadium Redox Flow Battery », Journal of The Electrochemical Society, vol. 165, no 5, , A932–A938 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.0751805jes, lire en ligne, consulté le )
(en) Zhangxing He, Yingqiao Jiang, Yuehua Li et Jing Zhu, « Carbon layer-exfoliated, wettability-enhanced, SO3H-functionalized carbon paper: A superior positive electrode for vanadium redox flow battery », Carbon, vol. 127, , p. 297–304 (ISSN0008-6223, DOI10.1016/j.carbon.2017.11.006, lire en ligne, consulté le )
(en) Wenyue Li, Jianguo Liu et Chuanwei Yan, « Multi-walled carbon nanotubes used as an electrode reaction catalyst for VO2+/VO2+ for a vanadium redox flow battery », Carbon, vol. 49, no 11, , p. 3463–3470 (ISSN0008-6223, DOI10.1016/j.carbon.2011.04.045, lire en ligne, consulté le )
(en) Rong-Hsin Huang, Chung-Hsing Sun, Tung-mo Tseng et Wen-kai Chao, « Investigation of Active Electrodes Modified with Platinum/Multiwalled Carbon Nanotube for Vanadium Redox Flow Battery », Journal of The Electrochemical Society, vol. 159, no 10, , A1579–A1586 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.003210jes, lire en ligne, consulté le )
(en) Georgios Nikiforidis, Amal Belhcen et Mérièm Anouti, « A highly concentrated vanadium protic ionic liquid electrolyte for the vanadium redox flow battery », Journal of Energy Chemistry, vol. 57, , p. 238–246 (ISSN2095-4956, DOI10.1016/j.jechem.2020.09.001, lire en ligne, consulté le )
(en) M. A. Miller, J. S. Wainright et R. F. Savinell, « Communication—Iron Ionic Liquid Electrolytes for Redox Flow Battery Applications », Journal of The Electrochemical Society, vol. 163, no 3, , A578–A579 (ISSN0013-4651 et 1945-7111, DOI10.1149/2.0061605jes, lire en ligne, consulté le )
(en) Zheng Li, Kyle C. Smith, Yajie Dong et Nir Baram, « Aqueous semi-solid flow cell: demonstration and analysis », Physical Chemistry Chemical Physics, vol. 15, no 38, , p. 15833–15839 (ISSN1463-9084, DOI10.1039/C3CP53428F, lire en ligne, consulté le )
(en) Norman H. Hagedcrn, « NASA Redox Storage System Development Project », U.S. Department of Energy Conservation and Renewable Energy Division of Energy Storage Systems, (lire en ligne [PDF]).
nih.gov
ncbi.nlm.nih.gov
Sebastiano Bellani, Leyla Najafi, Mirko Prato et Reinier Oropesa-Nuñez, « Graphene-Based Electrodes in a Vanadium Redox Flow Battery Produced by Rapid Low-Pressure Combined Gas Plasma Treatments », Chemistry of Materials, vol. 33, no 11, , p. 4106–4121 (ISSN0897-4756, PMID34267420, PMCIDPMC8274967, DOI10.1021/acs.chemmater.1c00763, lire en ligne, consulté le )
researchgate.net
(en) G. Hernandez-Flores, H.M. Poggi-Varaldo et O. Solorza-Feria, « Comparison of alternative membranes to replace
high cost Nafion ones in microbial fuel cells », International Journal of Hydrogen Energy, vol. 41, , p. 23354-23362, article no 48 (DOIhttps://doi.org/10.1016/j.ijhydene.2016.08.206, lire en ligne [PDF])
rsc.org
pubs.rsc.org
(en) Zheng Li, Kyle C. Smith, Yajie Dong et Nir Baram, « Aqueous semi-solid flow cell: demonstration and analysis », Physical Chemistry Chemical Physics, vol. 15, no 38, , p. 15833–15839 (ISSN1463-9084, DOI10.1039/C3CP53428F, lire en ligne, consulté le )
(en) Wenyue Li, Jianguo Liu et Chuanwei Yan, « Graphite–graphite oxide composite electrode for vanadium redox flow battery », Electrochimica Acta, vol. 56, no 14, , p. 5290–5294 (ISSN0013-4686, DOI10.1016/j.electacta.2011.02.083, lire en ligne, consulté le )
(en) J. Sun, M. C. Wu, X. Z. Fan et Y. H. Wan, « Aligned microfibers interweaved with highly porous carbon nanofibers: A Novel electrode for high-power vanadium redox flow batteries », Energy Storage Materials, vol. 43, , p. 30–41 (ISSN2405-8297, DOI10.1016/j.ensm.2021.08.034, lire en ligne, consulté le )
(en) H. Q. Zhu, Y. M. Zhang, L. Yue et W. S. Li, « Graphite–carbon nanotube composite electrodes for all vanadium redox flow battery », Journal of Power Sources, selected papers from the: International Battery Materials Association 2007 Conference. In Memoriam of Juergen Besenhard, vol. 184, no 2, , p. 637–640 (ISSN0378-7753, DOI10.1016/j.jpowsour.2008.04.016, lire en ligne, consulté le )
(en) Ping Zhao, Huamin Zhang, Hantao Zhou et Baolian Yi, « Nickel foam and carbon felt applications for sodium polysulfide/bromine redox flow battery electrodes », Electrochimica Acta, vol. 51, no 6, , p. 1091–1098 (ISSN0013-4686, DOI10.1016/j.electacta.2005.06.008, lire en ligne, consulté le )
(en) Zhangxing He, Yingqiao Jiang, Yuehua Li et Jing Zhu, « Carbon layer-exfoliated, wettability-enhanced, SO3H-functionalized carbon paper: A superior positive electrode for vanadium redox flow battery », Carbon, vol. 127, , p. 297–304 (ISSN0008-6223, DOI10.1016/j.carbon.2017.11.006, lire en ligne, consulté le )
(en) Wenyue Li, Jianguo Liu et Chuanwei Yan, « Multi-walled carbon nanotubes used as an electrode reaction catalyst for VO2+/VO2+ for a vanadium redox flow battery », Carbon, vol. 49, no 11, , p. 3463–3470 (ISSN0008-6223, DOI10.1016/j.carbon.2011.04.045, lire en ligne, consulté le )
(en) Georgios Nikiforidis, Amal Belhcen et Mérièm Anouti, « A highly concentrated vanadium protic ionic liquid electrolyte for the vanadium redox flow battery », Journal of Energy Chemistry, vol. 57, , p. 238–246 (ISSN2095-4956, DOI10.1016/j.jechem.2020.09.001, lire en ligne, consulté le )
wiley.com
onlinelibrary.wiley.com
(en) Maria Skyllas-Kazacos, Liuyue Cao, Michael Kazacos et Nadeem Kausar, « Vanadium Electrolyte Studies for the Vanadium Redox Battery—A Review », ChemSusChem, vol. 9, no 13, , p. 1521–1543 (ISSN1864-564X, DOI10.1002/cssc.201600102, lire en ligne, consulté le )
(en) Wei Wang, Qingtao Luo, Bin Li et Xiaoliang Wei, « Recent Progress in Redox Flow Battery Research and Development », Advanced Functional Materials, vol. 23, no 8, , p. 970–986 (DOI10.1002/adfm.201200694, lire en ligne, consulté le )
(en) Metin Gencten et Yucel Sahin, « A critical review on progress of the electrode materials of vanadium redox flow battery », International Journal of Energy Research, vol. 44, no 10, , p. 7903–7923 (ISSN1099-114X, DOI10.1002/er.5487, lire en ligne, consulté le )
(en) Mihai Duduta, Bryan Ho, Vanessa C. Wood et Pimpa Limthongkul, « Semi-Solid Lithium Rechargeable Flow Battery », Advanced Energy Materials, vol. 1, no 4, , p. 511–516 (DOI10.1002/aenm.201100152, lire en ligne, consulté le )