An Inexpensive Aqueous Flow Battery for Large-Scale Electrical Energy Storage Based on Water-Soluble Organic Redox Couples
暂无分享,去创建一个
Fang Wang | G. K. Surya Prakash | S. Narayanan | G. Prakash | Bo Yang | Sekharipuram R. Narayanan | Bo Yang | F. Wang | Lena E. Hoober-Burkhardt | Lena Hoober-Burkhardt
[1] K. Phani,et al. Electrochemical investigation of quinone-hydroquinone couples in molten acetamide at 85°C , 1985 .
[2] Michael P. Marshak,et al. A metal-free organic–inorganic aqueous flow battery , 2014, Nature.
[3] Subbarao Surampudi,et al. High efficiency direct methanol fuel cell based on poly(styrenesulfonic) acid (PSSA)–poly(vinylidene fluoride) (PVDF) composite membranes , 2004 .
[4] M. Mench,et al. Redox flow batteries: a review , 2011 .
[5] Gareth Kear,et al. Development of the all‐vanadium redox flow battery for energy storage: a review of technological, financial and policy aspects , 2012 .
[6] H. Sakaebe,et al. A two-compartment cell for using soluble benzoquinone derivatives as active materials in lithium secondary batteries , 2011 .
[7] Jun Liu,et al. Electrochemical energy storage for green grid. , 2011, Chemical reviews.
[8] L. Jeftić,et al. A survey on the electrochemical reduction of quinones , 1970 .
[9] Safeer Ahmed,et al. Mechanistic study of quinone-polyalcohol interaction through cyclic voltammetry , 2013, Russian Journal of Electrochemistry.
[10] B. Dunn,et al. Electrical Energy Storage for the Grid: A Battery of Choices , 2011, Science.
[11] Adam Z. Weber,et al. Optimization of the iron-ion/hydrogen redox flow cell with iron chloride catholyte salt , 2014 .
[12] S. Patai,et al. The Chemistry of the quinonoid compounds , 1974 .
[13] R. Compton,et al. Voltammetric characterization of DNA intercalators across the full pH range: anthraquinone-2,6-disulfonate and anthraquinone-2-sulfonate. , 2010, The journal of physical chemistry. B.
[14] J. Kosek,et al. Recent advances in PEM liquid-feed direct methanol fuel cells , 1996, Proceedings of 11th Annual Battery Conference on Applications and Advances.
[15] S. Narayanan,et al. Materials challenges and technical approaches for realizing inexpensive and robust iron–air batteries for large-scale energy storage , 2012 .
[16] Tomoo Yamamura,et al. Electron-Transfer Kinetics of Np3 + ∕ Np4 + , NpO2 + ∕ NpO2 2 + , V2 + ∕ V3 + , and VO2 + ∕ VO2 + at Carbon Electrodes , 2005 .
[17] Maurice M. Kreevoy,et al. Molecular Orbital Theory for Organic Chemists. , 1962 .
[18] F. González,et al. Understanding the linear correlation between diffusion coefficient and molecular weight. A model to estimate diffusion coefficients in acetonitrile solutions , 2011 .
[19] L. Fieser,et al. REDUCTION POTENTIALS OF QUINONES. II. THE POTENTIALS OF CERTAIN DERIVATIVES OF BENZOQUINONE, NAPHTHOQUINONE AND ANTHRAQUINONE , 1924 .
[20] J. Hale,et al. Reduction of p-quinones at a dropping mercury electrode , 1963 .
[21] Partha Sarathi Guin,et al. Electrochemical Reduction of Quinones in Different Media: A Review , 2011 .
[22] J. Tomasi,et al. Electrostatic interaction of a solute with a continuum. A direct utilizaion of AB initio molecular potentials for the prevision of solvent effects , 1981 .
[23] Rate constants for the electrode reactions of some quinones in aprotic media at platinum, gold and mercury electrodes , 1976 .
[24] J. Newman,et al. A comparison between flow-through and flow-by porous electrodes for redox energy storage , 1981 .
[25] M. D. Rooij,et al. Electrochemical Methods: Fundamentals and Applications , 2003 .
[26] Rudolph A. Marcus,et al. On the Theory of Oxidation‐Reduction Reactions Involving Electron Transfer. I , 1956 .
[27] E. Biilmann. Oxidation and reduction potentials of organic compounds , 1924 .
[28] R. Compton,et al. Voltammetric reduction of perinaphthenone in aqueous and non-aqueous media: An electrochemical ESR investigation , 2006 .
[29] R. L. Flurry,et al. The Polarographic Reduction of Some Aryl Diketones , 1964 .