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Original Articles

An Application of Actinide Elements for a Redox Flow Battery

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Pages 253-256 | Received 18 May 1999, Published online: 07 Feb 2012

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Seong-Yun KIM, Masayuki HARADA, Hiroshi TOMIYASU, Yoshinobu SHIOKAWA & Yasuhisa IKEDA. (2000) Electrochemical Study on Octakis(dimethyl sulfoxide)uranium(IV) Complex in Dimethyl Sulfoxide. Journal of Nuclear Science and Technology 37:11, pages 999-1002.
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Articles from other publishers (30)

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Oliver NolteIvan A. VolodinChristian StolzeMartin D. Hager & Ulrich S. Schubert. (2021) Trust is good, control is better: a review on monitoring and characterization techniques for flow battery electrolytes. Materials Horizons 8:7, pages 1866-1925.
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Kazuki Ouchi, Atsushi Komatsu, Koichiro Takao, Yoshihiro Kitatsuji & Masayuki Watanabe. (2021) Electrochemical Studies of Uranium (IV) in an Ionic Liquid–DMF Mixture to Build a Redox Flow Battery Using Uranium as an Electrode Active Material. Chemistry Letters 50:6, pages 1169-1172.
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Y. Lai, K. Wei, G. Chappell, J. Diaz, T. Siegrist, P. J. W. Moll, D. Graf & R. E. Baumbach. (2020) Tuning the structural and antiferromagnetic phase transitions in : Hydrostatic pressure and chemical substitution . Physical Review Materials 4:7.
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M. Vynnycky & M. Assunça͂o. (2019) The Vanadium Redox Flow Battery: an Asymptotic Perspective. SIAM Journal on Applied Mathematics 79:4, pages 1147-1172.
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Satoshi Hasegawa, Seong-Yun Kim, Tatsuya Ito & Tetsunari Ebina. (2018) Redox behavior of $${\text{VO}}^{2 + } / {\text{VO}}_{2}^{ + }$$ VO 2 + / VO 2 + as a simulant of $${\text{NpO}}_{2}^{ + } / {\text{NpO}}_{2}^{2 + }$$ NpO 2 + / NpO 2 2 + in boiling nitric acid solution. Journal of Radioanalytical and Nuclear Chemistry 317:3, pages 1319-1328.
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Liuyue Cao, Maria Skyllas‐Kazacos & Da‐Wei Wang. (2018) Solar Redox Flow Batteries: Mechanism, Design, and Measurement. Advanced Sustainable Systems 2:8-9, pages 1800031.
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Arvind S. Ambolikar, Saurav K. Guin, U.M. Kasar & J.V. Kamat. (2015) Electrochemistry of actinide on electrochemically reduced graphene oxide: Electrocatalysis of Np(VI)O22+/Np(V)O2+ in nitric acid solution. Electrochimica Acta 185, pages 259-266.
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Jens NoackNataliya RoznyatovskayaTatjana HerrPeter Fischer. (2015) The Chemistry of Redox‐Flow Batteries. Angewandte Chemie International Edition 54:34, pages 9776-9809.
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Jens Noack, Nataliya Roznyatovskaya, Tatjana Herr & Peter Fischer. (2015) Die Chemie der Redox‐Flow‐Batterien. Angewandte Chemie 127:34, pages 9912-9947.
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Sukhwan Yun, Javier Parrondo & Vijay Ramani. (2014) Derivatized cardo-polyetherketone anion exchange membranes for all-vanadium redox flow batteries. J. Mater. Chem. A 2:18, pages 6605-6615.
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Georgios Nikiforidis, Léonard Berlouis, David Hall & David Hodgson. (2013) Impact of electrolyte composition on the performance of the zinc–cerium redox flow battery system. Journal of Power Sources 243, pages 691-698.
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Byunghyun Hwang & Ketack Kim. (2013) Redox Pairs in Redox Flow Batteries. Journal of the Korean Electrochemical Society 16:3, pages 99-110.
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M. Skyllas-Kazacos, C. Menictas & T. Lim. 2013. Electricity Transmission, Distribution and Storage Systems. Electricity Transmission, Distribution and Storage Systems 398 441 .
Aaron A. Shinkle, Alice E.S. Sleightholme, Lucas D. Griffith, Levi T. Thompson & Charles W. Monroe. (2012) Degradation mechanisms in the non-aqueous vanadium acetylacetonate redox flow battery. Journal of Power Sources 206, pages 490-496.
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V.M. Fthenakis & T. Nikolakakis. 2012. Comprehensive Renewable Energy. Comprehensive Renewable Energy 199 212 .
Tomoo Yamamura, Kenji Shirasaki, Hironori Sato, Yoshiyuki Nakamura, Hiroshi Tomiyasu, Isamu Satoh & Yoshinobu Shiokawa. (2007) Enhancements in the Electron-Transfer Kinetics of Uranium-Based Redox Couples Induced by Tetraketone Ligands with Potential Chelate Effect. The Journal of Physical Chemistry C 111:50, pages 18812-18820.
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Yoshinobu SHIOKAWA, Tomoo YAMAMURA, Dai AOKI, Yoshiya HOMMA & Yoshichika ŌNUKI. (2007) A Recent Advance of Actinide Materials Science based on the Electrochemical Preparation of Uranium and Neptunium Metalsウラン・ネプツニウムの新しい金属調製法を端緒としたアクチノイド科学への新展開. Journal of the Atomic Energy Society of Japan 49:11-12, pages 755-761.
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T. Yamamura, N. Watanabe & Y. Shiokawa. (2006) Energy efficiency of neptunium redox battery in comparison with vanadium battery. Journal of Alloys and Compounds 408-412, pages 1260-1266.
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Kenji Shirasaki, Tomoo Yamamura, Yohei Monden & Yoshinobu Shiokawa. (2006) Electrolytic Reduction of U(IV) Salts to U(III) in N , N -Dimethylformamide: Effects of Electrode Materials and Counter Anions . Journal of the Physical Society of Japan 75:Suppl, pages 152-154.
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Tomoo Yamamura, Kenji Shirasaki & Yoshinobu Shiokawa. (2006) Preparation of Uranium(III) Triflate in Tetrahydrofuran by Reduction of U(OTf) 4 with Zinc amalgam . Journal of the Physical Society of Japan 75:Suppl, pages 149-151.
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Yoshinobu Shiokawa, Tomoo Yamamura & Kenji Shirasaki. (2006) Energy Efficiency of an Uranium Redox-Flow Battery Evaluated by the Butler–Volmer Equation. Journal of the Physical Society of Japan 75:Suppl, pages 137-142.
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Q. Sun, Q. Wang, Y. Shiokawa & Y. Kawazoe. (2005) Interactions of uranium atom with tetraketone complexes. Chemical Physics Letters 415:4-6, pages 243-245.
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Tomoo Yamamura, Nobutaka Watanabe, Takashi Yano & Yoshinobu Shiokawa. (2005) Electron-Transfer Kinetics of Np[sup 3+]∕Np[sup 4+], NpO[sub 2][sup +]∕NpO[sub 2][sup 2+], V[sup 2+]∕V[sup 3+], and VO[sup 2+]∕VO[sub 2][sup +] at Carbon Electrodes. Journal of The Electrochemical Society 152:4, pages A830.
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Tomoo Yamamura, Yoshinobu Shiokawa, Hajimu Yamana & Hirotake Moriyama. (2002) Electrochemical investigation of uranium β-diketonates for all-uranium redox flow battery. Electrochimica Acta 48:1, pages 43-50.
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Seong-Yun KIM, Masayuki HARADA, Hiroshi TOMIYASU, Yoshinobu SHIOKAWA & Yasuhisa IKEDA. (2000) Electrochemical Study on Octakis(dimethyl sulfoxide)uranium(IV)Complex in Dimethyl Sulfoxide.. Journal of Nuclear Science and Technology 37:11, pages 999-1002.
Crossref

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