Y. Peng, Z. Zhu, R. D. Braatz, and A. S. Myerson, Gypsum crystallization during phosphoric acid production: Modeling and experiments using the mixed-solvent-electrolyte thermodynamic model

. Eng, Chem. Res, vol.54, pp.7914-7924, 2015.

D. Meranda and W. F. Furter, Vapor-liquid equilibrium in alcohol-water systems containing dissolved halide salts and salt mixtures, AIChE J, vol.18, pp.111-116, 1972.

K. Xu, Nonaqueous liquid electrolytes for lithium-based rechargeable batteries, Chem. Rev, vol.104, pp.4303-4418, 2004.

H. Gores and J. Barthel, Nonaqueous electrolyte solutions: New materials for devices and processes based on recent applied research, Pure Applied Chem, vol.67, pp.919-930, 1995.

O. F. Tower and A. F. Germann, Vapor pressures of certain alcoholic solutions, J. Am. Chem. Soc, vol.36, issue.12, pp.2449-2456, 1914.

A. M. Hayward and E. P. Perman, Vapour pressure and heat of dilution.-Part VII. Vapour pressures of 425 aqueous solutions of sodium hydroxide and of alcoholic solutions of calcium chloride, Trans. Faraday Soc, vol.27, pp.59-69, 1931.

R. Mar and R. Carling, The calcium chloride-ethanol system, Thermochim. Acta, vol.45, pp.213-217, 1981.

J. Barthel, R. Neueder, and W. Kunz, Osmotic coefficients of non-aqueous electrolyte solutions at thermodynamic and McMillan-Mayer level, Pure Applied Chem, vol.65, pp.889-894, 1993.

J. Barthel, H. Krienke, R. Neueder, and M. Holovko, The role of ion-aggregate formation in the calculation of physical properties of electrolyte solutions, Fluid Phase Equilib, vol.194, pp.107-122, 2002.

W. R. Fawcett and A. C. Tikanen, Application of the mean spherical approximation to the estimation of electrolyte activity coefficients in methanol solutions, J. Mol. Liq, vol.73, pp.373-384, 1997.

J. Barthel, H. Krienke, M. Holovko, V. Kapko, and I. Protsykevich, The application of the associative mean 435 spherical approximation in the theory of nonaqueous electrolyte solutions, Condens. Matter Phys, vol.3, pp.657-674, 2000.

W. G. Mcmillan and J. E. Mayer, The statistical thermodynamics of multicomponent systems, J. Chem. Phys, vol.13, pp.276-305, 1945.

H. Friedman, Lewis-Randall to McMillan-Mayer conversion for the thermodynamic excess functions 440 of solutions. Part I. Partial free energy coefficients, J. Solution Chem, vol.1, issue.5, pp.387-412, 1972.

B. Pailthorpe, D. Mitchell, and B. Ninham, Ion-solvent interactions and the activity coefficients of real electrolyte solutions, J. Chem. Soc. Faraday Trans. 2, vol.80, pp.115-139, 1984.

J. Simonin, Study of experimental-to-McMillan-Mayer conversion of thermodynamic excess functions, J. Chem. Soc. Faraday Trans, vol.92, pp.3519-3523, 1996.
URL : https://hal.archives-ouvertes.fr/hal-00162530

D. Stigter, Interactions in aqueous solutions. II. Osmotic pressure and osmotic coefficient of sucrose and glucose solutions, J. Phys. Chem, vol.64, pp.118-124, 1960.

B. Behzadi, B. Patel, A. Galindo, and C. Ghotbi, Modeling electrolyte solutions with the saft-vr equation using yukawa potentials and the mean-spherical approximation, Fluid Phase Equilib, vol.236, pp.241-255, 2005.

C. Held, A. Prinz, V. Wallmeyer, and G. Sadowski, Measuring and modeling alcohol/salt systems, Chemical engineering science, vol.68, pp.328-339, 2012.

J. Barthel, H. Krienke, and W. Kunz, Physical chemistry of electrolyte solutions: modern aspects, vol.5, 1998.

J. Barthel, R. Neueder, and G. Lauermann, Vapor pressures of non-aqueous electrolyte solutions. Part 1. 455 Alkali metal salts in methanol, J. Solution Chem, vol.14, pp.621-633, 1985.

J. Barthel and G. Lauermann, Vapor pressure measurements on non-aqueous electrolyte solutions. Part 3: Solutions of sodium lodide in ethanol, 2-propanol, and acetonitrile, J. Solution Chem, vol.15, pp.869-877, 1986.

J. Barthel, R. Neueder, H. Poepke, and H. Wittmann, Osmotic and activity coefficients of nonaqueous 460 electrolyte solutions. 1. lithium perchlorate in the protic solvents methanol, ethanol, and 2-propanol, J. Solution Chem, vol.27, pp.1055-1066, 1998.

J. Barthel, R. Neueder, H. Poepke, and H. Wittmann, Osmotic coefficients and activity coefficients of nonaqueous electrolyte solutions. Part 4. Lithium bromide, tetrabutylammonium bromide, and tetrabutylammonium perchlorate in acetone, J. Solution Chem, vol.28, pp.1277-1287, 1999.

K. Nasirzadeh, R. Neueder, and W. Kunz, Vapor pressures, osmotic and activity coefficients of electrolytes in protic solvents at different temperatures. 2. Lithium bromide in ethanol, J. Solution Chem, vol.33, pp.1429-1446, 2004.

J. Barthel and G. Lauermann, Vapor pressure measurements on non-aqueous electrolyte solutions. Part 3: Solutions of sodium lodide in ethanol, 2-propanol, and acetonitrile, J. Solution Chem, vol.15, pp.470-869, 1986.

H. Krienke, J. Barthel, M. Holovko, I. Protsykevich, and Y. Kalyushnyi, Osmotic and activity coefficients of strongly associated electrolytes over large concentration ranges from chemical model calculations, J. Mol. Liq, vol.87, pp.191-216, 2000.

L. Blum, Simple electrolytes in the mean spherical approximation, p.475

, Advances and Perspectives, vol.5, pp.1-66, 1980.

M. Wertheim, Fluids with highly directional attractive forces. I. Statistical thermodynamics, J. Stat. Phys, vol.35, pp.19-34, 1984.

M. Wertheim, Fluids with highly directional attractive forces. II. Thermodynamic perturbation theory and integral equations, J. Stat. Phys, vol.35, pp.35-47, 1984.

L. Blum and O. Bernard, The general solution of the binding mean spherical approximation for pairing ions, J. Stat. Phys, vol.79, pp.569-583, 1995.
URL : https://hal.archives-ouvertes.fr/hal-00165084

O. Bernard and L. Blum, Binding mean spherical approximation for pairing ions: an exponential approximation and thermodynamics, J. Chem. Phys, vol.104, pp.4746-4754, 1996.
URL : https://hal.archives-ouvertes.fr/hal-00165063

J. Simonin, O. Bernard, and L. Blum, Real ionic solutions in the mean spherical approximation, vol.3, p.485
URL : https://hal.archives-ouvertes.fr/hal-00162536

, Osmotic and activity coefficients for associating electrolytes in the primitive model, J. Phys. Chem. B, vol.102, pp.4411-4417, 1998.

J. Simonin, O. Bernard, and L. Blum, Ionic solutions in the binding mean spherical approximation: thermodynamic properties of mixtures of associating electrolytes, J. Phys. Chem. B, vol.103, pp.699-704, 1999.
URL : https://hal.archives-ouvertes.fr/hal-00162407

A. Ruas, P. Moisy, J. Simonin, O. Bernard, J. Dufrêche et al., Lanthanide salts solutions: Representation of osmotic coefficients within the binding mean spherical approximation, J. Phys. Chem. B, vol.109, pp.5243-5248, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00164780

J. Simonin, Real ionic solutions in the mean spherical approximation. 2. Pure strong electrolytes up to very high concentrations, and mixtures, in the primitive model, J. Phys. Chem. B, vol.101, pp.4313-4320, 1997.
URL : https://hal.archives-ouvertes.fr/hal-00162536

W. R. Fawcett, Thermodynamic parameters for the solvation of monatomic ions in water, J. Phys. Chem. B, vol.103, pp.11181-11185, 1999.

S. Cummings, J. Enderby, G. W. Neilson, J. Newsome, R. Howe et al., Chloride ions in aqueous solutions, Nature, vol.287, pp.714-716, 1980.

G. Neilson and J. Enderby, The structure around nitrate ions in concentrated aqueous solutions, J. Phys. C, vol.15, pp.2347-2352, 1982.

P. Skabichevskii, Osmotic coefficients of lithium chloride and bromide solutions in methanol, Russ. J. Phys. Chem, vol.43, pp.1432-1433, 1969.

Y. G. Vlaslov and P. Antonow, Activity of methanol and activity coefficients of salts in sodium choride505 methanol and sodium bromide-methanol solutions at 25 ? c, Russ, J. Phys. Chem, vol.47, pp.1278-1279, 1973.

O. Bonner, The colligative properties of certain electrolytes and non-electrolytes in methanol, J. Solution Chem, vol.16, pp.307-314, 1987.

P. Tomasula, G. J. Czerwienski, and D. Tassios, Vapor pressures and osmotic coefficients: electrolyte solutions of methanol, Fluid Phase Equilib, vol.38, pp.129-153, 1987.

M. T. Zafarani-moattar and K. Nasirzade, Osmotic coefficient of methanol + LiCl, + LiBr, and + LiCH 3 COO at 25 ? C, J. Chem. Eng. Data, vol.43, pp.215-219, 1998.

K. Nasirzadeh and R. Neueder, Measurement and correlation of osmotic coefficients and evaluation of vapor pressure for electrolyte solutions of LiClO 4 and LiNO 3 in methanol at 25 ? C, J. Mol. Liq, vol.113, pp.13-20, 2004.

K. Nasirzadeh, N. Papaiconomou, R. Neueder, and W. Kunz, Vapor pressures, osmotic and activity coefficients of electrolytes in protic solvents at different temperatures. 1. Lithium bromide in methanol, J. Solution Chem, vol.33, pp.227-245, 2004.

M. T. Zafarani-moattar and J. Jahanbin-sardroodi, Isopiestic determination of osmotic coefficients and evaluation of vapor pressures for electrolyte solutions of some lithium salts in ethanol, Fluid Phase 520 Equilib, vol.166, pp.207-223, 1999.

M. T. Zafarani-moattar and M. Aria, Isopiestic determination of osmotic and activity coefficients for solutions of LiCl, LiBr, and LiNO 3 in 2-propanol at 25 ? C, J. Solution Chem, vol.30, pp.351-363, 2001.

M. T. Zafarani-moattar and J. Jahanbin-sardroodi, Measurement and correlation of osmotic coefficients and evaluation of vapor pressures for solutions of CaCl 2 and Ca(NO 3 ) 2 in ethanol at 298 K, Fluid 525 Phase Equilib, vol.172, pp.221-235, 2000.

M. Zafarani-moattar, J. J. Sardroodi, and K. Nasirzadeh, Isopiestic determination of osmotic coefficients and evaluation of vapor pressures for solutions of calcium chloride and calcium nitrate in methanol at 298.15 K, Fluid Phase Equilib, vol.200, pp.173-185, 2002.

J. Barthel, G. Lauermann, and R. Neueder, Vapor pressure measurements on non-aqueous electrolyte so530 lutions. Part 2. Tetraalkylammonium salts in methanol. activity coefficients of various 1-1 electrolytes at high concentrations, J. Solution Chem, vol.15, issue.10, pp.851-867, 1986.
DOI : 10.1007/bf00646093

O. Bonner, ?. S. Paljk, and C. Klofutar, Association studies of tetramethylguanidinium perchlorate and tetramethylguanidinium chloride in ethanol solutions at 25 ? C, J. Solution Chem, vol.20, pp.539-550, 1991.
DOI : 10.1007/bf00650808

K. E. N'tsoukpoe, H. U. Rammelberg, A. F. Lele, K. Korhammer, B. A. Watts et al., , p.535

. Ruck, A review on the use of calcium chloride in applied thermal engineering, Appl. Therm. Eng, vol.75, pp.513-531, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01303243

K. Korhammer, C. Apel, T. Osterland, and W. K. Ruck, Reaction of calcium chloride and magnesium chloride and their mixed salts with ethanol for thermal energy storage, Energy Procedia, vol.91, pp.161-171, 2016.

J. Barthel, R. Neueder, H. Poepke, and H. Wittmann, Osmotic coefficients and activity coefficients of nonaqueous electrolyte solutions. Part 2. Lithium perchlorate in the aprotic solvents acetone, acetonitrile, dimethoxyethane, and dimethylcarbonate, J. Solution Chem, vol.28, pp.489-503, 1999.

W. Kunz, J. Barthel, L. Klein, T. Cartailler, P. Turq et al., Lithium bromide in acetonitrile: thermodynamics, theory, and simulation, J. Solution Chem, vol.20, pp.875-891, 1991.

I. Wichterle, J. Linek, Z. Wagner, and H. V. Kehiaian, Vapor-liquid equilibrium in mixtures and solutions bibliographic database. EVLM'2003, pp.1888-2003, 2003.

L. Blum and J. Høye, Mean spherical model for asymmetric electrolytes. 2. Thermodynamic properties and the pair correlation function, J. Phys. Chem, vol.81, pp.1311-1316, 1977.

B. Maribo-mogensen, G. M. Kontogeorgis, and K. Thomsen, Comparison of the debye-huückel and the mean spherical approximation theories for electrolyte solutions, Ind. Eng. Chem. Res, vol.51, pp.5353-5363, 2012.

M. Wertheim, Fluids of dimerizing hard spheres, and fluid mixtures of hard spheres and dispheres, J. Chem. Phys, vol.85, issue.5, pp.2929-2936, 1986.

J. Simonin, L. Blum, and P. Turq, Real ionic solutions in the mean spherical approximation. 1. Simple salts in the primitive model, J. Phys. Chem, vol.100, pp.7704-7709, 1996.
URL : https://hal.archives-ouvertes.fr/hal-00162536

J. Simonin, O. Bernard, and L. Blum, Description of the thermodynamic properties of aqueous ionic solutions within the mean spherical approximation, Oil Gas Sci. Technol, vol.63, pp.321-327, 2008.
URL : https://hal.archives-ouvertes.fr/hal-02002010

W. R. Fawcett and A. C. Tikanen, Role of solvent permittivity in estimation of electrolyte activity coef560 ficients on the basis of the mean spherical approximation, J. Phys. Chem, vol.100, pp.4251-4255, 1996.

L. Blum, F. Vericat, and W. R. Fawcett, On the mean spherical approximation for hard ions and dipoles, J. Chem. Phys, vol.96, pp.3039-3044, 1992.

L. Blum, F. Vericat, and W. R. Fawcett, Erratum: On the mean spherical approximation for hard ions and dipoles, J. Chem. Phys, vol.96, pp.10197-10197, 1992.

J. Barthel, H. Gores, G. Schmeer, and R. Wachter, Non-aqueous electrolyte solutions in chemistry and modern technology, Physical and Inorganic Chemistry, vol.111, pp.33-144, 1983.
DOI : 10.1007/3-540-12065-3_2

URL : https://epub.uni-regensburg.de/22952/1/ubr11910_ocr.pdf

R. D. Nelson, D. R. Lide, and A. A. Maryott, Selected values of electric dipole moments for molecules 570 in the gas phase, National Standard Reference Data System, 1967.

C. Gray and K. Gubbins, Theory of molecular fluids, vol.1, 1984.

O. Söhnel and P. Novotn, Novotn`y, Densities of aqueous solutions of inorganic substances, vol.22, 1985.

R. Larson and H. Hunt, Molecular forces and solvent power, J. Phys. Chem, vol.43, pp.417-423, 1939.
DOI : 10.1021/j150391a003

W. C. Vosburgh, L. Connell, and J. Butler, The electrostriction produced by salts in some aliphatic alcohols, J. Chem. Soc, pp.933-942, 1933.
DOI : 10.1039/jr9330000933

M. T. Zafarani-moattar and H. Shekaari, Density and speed of sound of lithium bromide with organic solvents: Measurement and correlation, J. Chem. Thermodyn, vol.39, pp.1649-1660, 2007.
DOI : 10.1016/j.jct.2007.04.006

A. J. Pasztor and C. M. Criss, Apparent molal volumes and heat capacities of some 1:1 electrolytes in 580 anhydrous methanol at 25 ? C, J. Solution Chem, vol.7, pp.27-44, 1978.
DOI : 10.1007/bf00654216

L. Werblan, A. Rotowska, and S. Minc, Viscosity of water-methanol solutions of LiClO 4 , NaClO 4 and NaCl, Electrochim. Acta, vol.16, pp.41-59, 1971.
DOI : 10.1016/0013-4686(71)85127-7

R. R. Pawar, C. S. Aher, J. D. Pagar, S. L. Nikam, and M. Hasan, Solubility, density and solution thermodynamics of NaI in different pure solvents and binary mixtures, J. Chem. Eng. Data, vol.57, pp.3563-3572, 2012.
DOI : 10.1021/je300754n

W. Cox and J. Wolfenden, The viscosity of strong electrolytes measured by a differential method, Proc. Roy. Soc. A, vol.145, pp.475-488, 1934.

R. Tomkins, E. Andalaft, and G. Janz, Conductance, density, and viscosity of nai in anhydrous acetonitrile at 25 ? c, Trans. Faraday Soc, vol.65, pp.1906-1911, 1969.
DOI : 10.1039/tf9696501906

R. Robinson and R. Stokes, Electrolyte Solutions, 1968.

R. Jervis, D. Muir, J. Butler, and A. Gordon, The conductance at 25 ? of lithium chloride, sodium and potassium bromides and potassium iodide in methanol, and of lithium chloride, sodium bromide and potassium iodide in water, J. Am. Chem. Soc, vol.75, pp.2855-2858, 1953.

J. Barthel, M. Krell, L. Iberl, and F. Feuerlein, Conductance of 1-1 electrolytes in methanol solutions from 595-45 to +23 ? C, J. Electroanal. Chem. Interf. Electrochem, vol.214, pp.485-505, 1986.

J. Graham, G. Kell, and A. Gordon, Equivalent and ionic conductances for lithium, sodium and potassium chlorides in anhydrous ethanol at 25 ?, J. Am. Chem. Soc, vol.79, pp.2352-2355, 1957.

N. Schmelzer, J. Einfeldt, and M. Grigo, Measurements of the electrolyte conductivity of alkali-metal perchlorates and LiNO 3 in acetone at 25 ? C, J. Chem. Soc. Faraday Trans. 1, vol.84, pp.931-939, 1988.

D. F. Evans, J. Thomas, J. A. Nadas, and S. M. Matesich, Conductance of electrolytes in acetone and in 1-propanol-acetone mixtures at 25 ?, J. Phys. Chem, vol.75, pp.1714-1722, 1971.

H. P. Hopkins, D. Jahagirdar, and A. B. Norman, Conductance studies on lithium salt-acetonitrile solutions at 25 ? C, J. Solution Chem, vol.8, pp.147-155, 1979.

H. P. Hopkins and A. B. Norman, Conductance and infrared studies on acetonitrile solutions containing 605 crown ethers and alkali metal salts, J. Phys. Chem, vol.84, pp.309-314, 1980.

J. Coetzee and G. Cunningham, Evaluation of single ion conductivities in acetonitrile, nitromethane, and nitrobenzene using tetraisoamylammonium tetraisoamylboride as reference electrolyte, J. Am. Chem. Soc, vol.87, pp.2529-2534, 1965.

J. E. Huheey, E. A. Keiter, R. L. Keiter, and O. K. Medhi, Inorganic chemistry: principles of structure 610 and reactivity, 2006.

H. Jenkins and K. Thakur, Reappraisal of thermochemical radii for complex ions, J. Chem. Educ, vol.56, issue.9, p.576, 1979.

B. Conway, The evaluation and use of properties of individual ions in slution, J. Solution Chem, vol.7, pp.721-770, 1978.

Z. Chen and M. Hojo, Relationship between triple ion formation constants and the salt concentration of the minimum in the conductometric curves in low-permittivity solvents, J. Phys. Chem. B, vol.101, pp.10896-10902, 1997.

P. K. Muhuri, B. Das, and D. K. Hazra, Ionic association of some lithium salts in 1,2-dimethoxyethane. A Raman spectroscopic and conductivity study, J. Phys. Chem. B, vol.101, pp.3329-3332, 1997.

M. Delsignore, H. Farber, and S. Petrucci, Ionic conductivity and microwave dielectric relaxation of lithium hexafluoroarsenate (LiAsF 6 ) and lithium perchlorate (LiClO 4 ) in dimethyl carbonate, J. Phys. Chem, vol.89, pp.4968-4973, 1985.

J. Barthel and R. Neueder, Conductivities, transference numbers, limiting ionic conductivities (of methanol solutions, Electrolyte Data Collection, vol.XII, 1992.

E. Bixon, R. Guerry, and D. Tassios, Salt effect on the vapor pressure of pure solvents: Methanol with seven salts at 24.9 ? C, J. Chem. Eng. Data, vol.24, pp.9-11, 1979.

J. Barthel and R. Neueder, Conductivities, transference numbers, limiting ionic conductivities of ethanol solutions, Electrolyte Data Collection, vol.XII

L. G. Savedoff, Conductance of electrolytes in anhydrous acetone, J. Am. Chem. Soc, vol.88, pp.664-667, 1966.

C. W. Jones and C. M. Cunningham, Electrolytic Conductance of Lithium Bromide in Acetone and Acetone-Bromosuccinic Acid Solutions, vol.155, p.635, 1976.

. Ch, , vol.14, pp.244-262

M. S. Niazi, Conductance of electrolytes in dipolar aprotic solvent mixtures. II. Conductance of lithium perchlorate in mixtures of ethyl methyl ketone and acetone with n,n-dimethylformamide at 25 ? C, Bull. Chem. Soc. Jpn, vol.61, pp.2165-2170, 1988.

P. G. Glugla, J. H. Byon, and C. A. Eckert, Pressure effects on conductivity and ionic association of some 640 monovalent salts in aprotic dipolar solvents, J. Chem. Eng. Data, vol.26, pp.80-84, 1981.

J. Barthel, H. Graml, R. Neueder, P. Turq, and O. Bernard, Electrolyte conductivity from infinite dilution to saturation, Curr. Top. Solution Chem, vol.1, pp.223-239, 1994.
DOI : 10.1351/pac198557020355

J. Barthel, R. Buchner, P. Eberspächer, M. Münsterer, J. Stauber et al., Dielectric relaxation spectroscopy of electrolyte solutions. recent developments and prospects, J. Mol. Liq, vol.78, issue.1, pp.85-88, 1998.

T. Vilariño, O. Bernard, and J. Simonin, Ionic solutions in the binding mean spherical approximation. Thermodynamics of associating electrolytes up to very high concentrations, J. Phys. Chem. B, vol.108, pp.5763-5770, 2004.

S. Hlushak, J. P. Simonin, S. De, O. Sio, A. Bernard et al., Speciation in 650 aqueous solutions of nitric acid, Dalton Trans, p.2853, 2013.