Effect of temperature on electro-electrodialysis of HI–I2–H2O mixture using ion exchange membranes
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[1] Kaoru Onuki,et al. Equilibrium potential across cation exchange membrane in HI–I2–H2O solution , 2010 .
[2] B. Rode,et al. QM/MM MD simulations of iodide ion (I(-)) in aqueous solution: a delicate balance between ion-water and water-water H-bond interactions. , 2010, The journal of physical chemistry. A.
[3] Kaoru Onuki,et al. Concentration of HIx solution by electro-electrodialysis using Nafion 117 for thermochemical water-splitting IS process , 2008 .
[4] T. Terai,et al. Water transport properties of crosslinked-PTFE based electrolyte membranes , 2008 .
[5] M. Dupuis,et al. Atomistic simulation of nafion membrane. 2. Dynamics of water molecules and hydronium ions. , 2007, The journal of physical chemistry. B.
[6] K. Bae,et al. Evaluation of the membrane properties with changing iodine molar ratio in HIx (HI–I2–H2O mixture) solution to concentrate HI by electro-electrodialysis , 2007 .
[7] F. Volino,et al. Quasielastic Neutron Scattering Study of Water Dynamics in Hydrated Nafion Membranes , 2007 .
[8] T. Yamaki,et al. Preparation and characterization of chemically stable polymer electrolyte membranes by radiation-induced graft copolymerization of four monomers into ETFE films , 2006 .
[9] H. Kubota,et al. Preparation of proton exchange membranes based on crosslinked polytetrafluoroethylene for fuel cell applications , 2004 .
[10] S. Paddison,et al. Transport in proton conductors for fuel-cell applications: simulations, elementary reactions, and phenomenology. , 2004, Chemical reviews.
[11] Kaoru Onuki,et al. Thermal efficiency evaluation of HI synthesis/concentration procedures in the thermochemical water splitting IS process , 2004 .
[12] Masaru Yoshida,et al. Radiation grafting of styrene into crosslinked PTEE films and subsequent sulfonation for fuel cell applications , 2003 .
[13] L. Kloo,et al. Synthesis, structure, and bonding in polyiodide and metal iodide-iodine systems. , 2003, Chemical reviews.
[14] Kaoru Onuki,et al. Electro-electrodialysis of hydriodic acid in the presence of iodine at elevated temperature , 2001 .
[15] N. Agmon,et al. The Grotthuss mechanism , 1995 .
[16] H. Ohshima,et al. Improvement on the Hogg—Healy—Fuerstenau formulas for the interaction of dissimilar double layers: I. Second and third approximations for moderate potentials , 1982 .
[17] P. Delahay,et al. Advances in Electrochemistry and Electrochemical Engineering , 1964 .
[18] Joel H. Hildebrand,et al. A Spectrophotometric Investigation of the Interaction of Iodine with Aromatic Hydrocarbons , 1949 .
[19] Kaoru Onuki,et al. Effect of Sulfur Dioxide Partial Pressure and Reaction Temperature on the Product Composition of the Bunsen Reaction , 2010 .
[20] N. Tanaka,et al. Electro-electrodialysis of HI―I2―H2O mixture using radiation―grafted polymer electrolyte membranes , 2010 .
[21] Vivek Utgikar,et al. Global warming potential of the sulfur–iodine process using life cycle assessment methodology , 2009 .
[22] K. Bae,et al. HI Concentration fromHIx (HI-H2O-I2) Solution for the ThermochemicalWater-Splitting IS Process by Electro- Electrodialysis , 2006 .
[23] R. Buck. Kinetics of bulk and interfacial ionic motion: microscopic bases and limits for the nernst—planck equation applied to membrane systems☆ , 1984 .
[24] A. J. Downs,et al. 26 – CHLORINE, BROMINE, IODINE AND ASTATINE , 1973 .
[25] Samuel Glasstone,et al. The Theory Of Rate Processes , 1941 .
[26] D. Briggs. The determination of the zeta-potential on cellulose a method , 1927 .