[1] Sheikholeslamzadeh, E., Chen, C. -C., & Rohani, S. (2012). Optimal Solvent Screening for the Crystallization of Pharmaceutical Compounds from Multisolvent Systems. Industrial & Engineering Chemistry Research, 51(42), 13792–13802. doi:10.1021/ie3014742
[2] Dechema, G. f. C. T. u. B. (2003). Solubility and related properties of large complex chemicals. Frankfurt am Main: Dechema.
[3] Abramov, Y. A. (2015). Major Source of Error in QSPR Prediction of Intrinsic Thermodynamic Solubility of Drugs: Solid vs Nonsolid State Contributions? Molecular Pharmaceutics, 12(6), 2126–2141. doi:10.1021/acs.molpharmaceut.5b00119
[4] Buchowski, H., Ksiazczak, A., & Pietrzyk, S. (1980). Solvent activity along a saturation line and solubility of hydrogen-bonding solids. The Journal of Physical Chemistry, 84(9), 975–979. doi:10.1021/j100446a008
[5] Apelblat, A., & Manzurola, E. (1999). Solubilities of o-acetylsalicylic, 4-aminosalicylic, 3,5-dinitrosalicylic, and p-toluic acid, and magnesium-DL-aspartate in water from T=(278 to 348) K. The Journal of Chemical Thermodynamics, 31(1), 85–91. doi:http://dx.doi.org/10.1006/jcht.1998.0424
[6] Wilson, G. M. (1964). Vapor-Liquid Equilibrium. XI. A New Expression for the Excess Free Energy of Mixing. Journal of the American Chemical Society, 86(2), 127–130. doi:10.1021/ja01056a002
[7] Renon, H., & Prausnitz, J. M. (1968). Local compositions in thermodynamic excess functions for liquid mixtures. AIChE Journal, 14(1), 135–144. doi:10.1002/aic.690140124
[8] Mohebbi, V., Kazemi Golbaghi, H. (2025). Experimental Analysis and NRTL Parameters Estimation Using PSO Method for Dibenzothiophene Extraction from Fuel with Deep Eutectic Solvent. Iranian Chemical Engineering Journal. E226111, [In Persian].
[9] Abrams, D. S., & Prausnitz, J. M. (1975). Statistical thermodynamics of liquid mixtures: A new expression for the excess Gibbs energy of partly or completely miscible systems. AIChE Journal, 21(1), 116–128. doi:10.1002/aic.690210115
[10] Fredenslund, A., Jones, R. L., & Prausnitz, J. M. (1975). Group-contribution estimation of activity coefficients in nonideal liquid mixtures. AIChE Journal, 21(6), 1086–1099. doi:10.1002/aic.690210607
[11] Klamt, A. (1995). Conductor-like screening model for real solvents: a new approach to the quantitative calculation of solvation phenomena. The Journal of Physical Chemistry, 99(7), 2224–2235.
[12] Lin, S. -T., & Sandler, S. I. (2002). A Priori Phase Equilibrium Prediction from a Segment Contribution Solvation Model. Industrial & Engineering Chemistry Research, 41(5), 899–913. doi:10.1021/ie001047w
[13] Sheikholeslamzadeh, E., & Rohani, S. (2012). Solubility Prediction of Pharmaceutical and Chemical Compounds in Pure and Mixed Solvents Using Predictive Models. Industrial & Engineering Chemistry Research, 51(1), 464–473. doi:10.1021/ie201344k
[14] Chen, C. -C., & Song, Y. (2004). Solubility modeling with a nonrandom two-liquid segment activity coefficient model. Industrial & engineering chemistry research, 43(26), 8354–8362.
[15] Haghtalab, A., & Yousefi Seyf, J. (2015). Vapor–Liquid and Solid–Liquid Modeling with a Universal Quasichemical Segment-Based Activity Coefficient Model. Industrial & Engineering Chemistry Research, 54(34), 8611–8623. doi:10.1021/acs.iecr.5b01573
[16] Chen, C. -C., & Crafts, P. A. (2006). Correlation and Prediction of Drug Molecule Solubility in Mixed Solvent Systems with the Nonrandom Two-Liquid Segment Activity Coefficient (NRTL−SAC) Model. Industrial & engineering chemistry research, 45(13), 4816–4824. doi:10.1021/ie051326p
[17] Rezaei, H., Dadkhah, A. A., Bahmani, M. A., & Frydouni, E. (2016). Solid-Liquid Equilibrium in Mixtures of Pyrene and Long Chain Normal-Alkanes with Optimization of Larsen Equation Parameters. Iranian Chemical Engineering Journal. 15(87), 6-13, [In Persian].
[18] Esfandiari, N. (2016). Comparison of Thermodynamic Modeling of Binary System (Carbon Dioxide-Dimethyl sulfoxide) and Ternary System (Carbon Dioxide-Dimethyl sulfoxide- Ampicillin) via Different Equation of State. Iranian Chemical Engineering Journal. 16(95), 106-100, [In Persian].
[19] Guo, Y., Yin, Q., Hao, H., Zhang, M., Bao, Y., Hou, B., ... Cong, W. (2014). Measurement and Correlation of Solubility and Dissolution Thermodynamic Properties of Furan-2-carboxylic Acid in Pure and Binary Solvents. Journal of Chemical & Engineering Data, 59(4), 1326–1333. doi:10.1021/je500012b
[20] Bhesaniya, K., Nandha, K., & Baluja, S. (2014). Thermodynamics of Fluconazole Solubility in Various Solvents at Different Temperatures. Journal of Chemical & Engineering Data, 59(3), 649–652. doi:10.1021/je4010257
[21] Zhang, J., Wang, L., Wang, D., Gong, J., Li, W., & Wang, J. (2011). Solubility of Dexibuprofen in Different Solvents from (263.15 to 293.15) K. Journal of Chemical & Engineering Data, 56(3), 671–673. doi:10.1021/je101165m
[22] Wu, G., Hu, Y., Gu, P., Yang, W., Ding, Z., Wang, C., & Qian, Y. (2015). Solubility and Solution Thermodynamics of Gibberellin A4 in Different Organic Solvents from 278.15 K to 333.15 K. Journal of Chemical & Engineering Data, 60(7), 2104–2109. doi:10.1021/acs.jced.5b00190
[23] Rathi, P., Jouyban, A., Khoubnasabjafari, M., & Kale, M. (2015). Solubility of Etoricoxib in Aqueous Solutions of 1,4-Butanediol, 1,4-Dioxane, N,N-Dimethylacetamide, N,N-Dimethylformamide, Dimethyl Sulfoxide, and Ethanol at 298.2 K. Journal of Chemical & Engineering Data, 60(7), 2128–2134. doi:10.1021/acs.jced.5b00201
[24] Liu, J.-Q., Chen, S.-Y., & Ji, B. (2014). Solubility and Thermodynamic Functions of Isatin in Pure Solvents. Journal of Chemical & Engineering Data, 59(11), 3407–3414. doi:10.1021/je500396b
[25] Su, J., Qian, C., Luo, N., Xiang, X., Xu, Y., & Chen, X. (2014). Experimental Measurement and Modeling of the Solubility of Biotin in Six Pure Solvents at Temperatures from 298.15 K to 333.85 K. Journal of Chemical & Engineering Data, 59(11), 3894–3899. doi:10.1021/je500787x
[26] Liu, M. -J., Fu, H. -L., Yin, D. -P., Zhang, Y. -L., Lu, C. -C., Cao, H., & Zhou, J. -Y. (2014). Measurement and Correlation of the Solubility of Enrofloxacin in Different Solvents from (303.15 to 321.05) K. Journal of Chemical & Engineering Data, 59(6), 2070–2074. doi:10.1021/je5002158
[27] Lan, G. -C., Wang, J. -L., Chen, L. -Z., Hou, H., Li, J., & Gao, Y. -P. (2015). Measurement and correlation of the solubility of 3,4-bis(3-nitrofurazan-4-yl) furoxan (DNTF) in different solvents. The Journal of Chemical Thermodynamics, 89, 264–269. doi:http://dx.doi.org/10.1016/j.jct.2015.06.003
[28] Zhang, L., Huang, Z., Wan, X., Li, J., & Liu, J. (2012). Measurement and Correlation of the Solubility of Febuxostat in Four Organic Solvents at Various Temperatures. Journal of Chemical & Engineering Data, 57(11), 3149–3152. doi:10.1021/je300647k
[29] Cao, X. -X., Tong, R. -J., Zhao, Y., Lv, T. -T., Song, Y., & Yao, J. -C. (2012). Determination and Correlation of Pyridazin-3-amine Solubility in Eight Organic Solvents at Temperatures Ranging from (288.05 to 333.35) K. Journal of Chemical & Engineering Data, 57(8), 2360–2366. doi:10.1021/je300517q
[30] Jia, Y. -X., Qian, C., Chen, X. -Z., & He, C. -H. (2012). Solubilities of 3-Methoxy-N-phenylaniline and 3-(Methylthio)-N-phenylaniline in Five Organic Solvents (285 K to 333.75 K). Journal of Chemical & Engineering Data, 57(5), 1581–1585. doi:10.1021/je3001816
[31] Fan, J. -P., Kong, T., Zhang, L., Tong, S., Tian, Z. -Y., Duan, Y. -H., & Zhang, X. -H. (2011). Solubilities of Ursolic Acid and Oleanolic Acid in Four Solvents from (283.2 to 329.7) K. Journal of Chemical & Engineering Data, 56(5), 2723–2725. doi:10.1021/je101309a
[32] Li, Y., Yao, X., Xu, L., Luo, T., & Liu, G. (2011). Solubilities of N-[(4-Bromo-3,5-difluorine)-phenyl]maleimide in Different Organic Solvents. Journal of Chemical & Engineering Data, 56(2), 358–360. doi:10.1021/je1010054
[33] Tian, N. -N., Wang, L. -S., Li, M. -Y., Li, Y., & Jiang, R. -Y. (2011). Solubilities of Phenylphosphinic Acid, Methylphenylphosphinic Acid, Hexachlorocyclotriphosphazene, and Hexaphenoxyc yclotriphosphazene in Selected Solvents. Journal of Chemical & Engineering Data, 56(3), 661–670. doi:10.1021/je1009812
[34] Wang, L., Du, C., Wang, X., Zeng, H., Yao, J., & Chen, B. (2015). Solubilities of Phosphoramidic Acid, N-(phenylmethyl)-, Diphenyl Ester in Selected Solvents. Journal of Chemical & Engineering Data, 60(6), 1814–1822. doi:10.1021/acs.jced.5b00007
[35] Guo, L., Fan, R. -L., Yun, G. -Q., & Chen, C. -Y. (2013). Solubilities of 1,3,2-Dioxaphosphorinane-2-methanol-α,α-5,5-tetramethyl 2-oxide in Selected Solvents at 273.15 K to 343.15 K. Journal of Chemical & Engineering Data, 58(8), 2267–2271. doi:10.1021/je4003114
[36] Liang, R., Bao, Z., Su, B., Xing, H., & Ren, Q. (2012). Solubility of Vitamin D3 in Six Organic Solvents at Temperatures from (248.2 to 273.2) K. Journal of Chemical & Engineering Data, 57(8), 2328–2331. doi:10.1021/je300401c
[37] Cheng, Y., Shao, Y., & Yan, W. (2011). Solubilities of Betulinic Acid in Thirteen Organic Solvents at Different Temperatures. Journal of Chemical & Engineering Data, 56(12), 4587–4591. doi:10.1021/je200531k
[38] Qing, X. -Y., Fu, H. -L., Shu, G., Liu, M.-J., Zhou, J. -Y., Wu, W. -B., ... Zhou, J.-J. (2015). Solubility and Solution Thermodynamics of Diphenoxylate in Different Pure Solvents. Journal of Chemical & Engineering Data, 60(6), 1629–1633. doi:10.1021/je5010033
[39] Yuan, Y., Fan, R. -L., Guo, L., Chen, C. -Y., & Zhao, Q. -Q. (2015). Solubilities of 1,3,2-Dioxaphosphorinane-2-methanol-α, 5, 5-trimethyl-α-phenyl-2-oxide in Selected Solvents between 278.15 K and 343.15 K. Journal of Chemical & Engineering Data, 60(3), 729–733. doi:10.1021/je500806u
[40] Qian, C., Wang, Y., & Chen, X. (2014). Solubility of 1-Fluoro-4-(methylsulfonyl)benzene in Five Pure Organic Solvents at Temperatures from (288.40 to 331.50) K. Journal of Chemical & Engineering Data, 59(4), 1254–1256. doi:10.1021/je400965y
[41] Yu, G. -M., Wang, L. -S., Sun, J., & Jiang, L. -K. (2015). Solubilities of Three Phosphorus Flame Retardants in Selected Organic Solvents. Journal of Chemical & Engineering Data, 60(6), 1803–1813. doi:10.1021/je501173n
[42] Fan, J. -P., Xie, Y. -L., Tian, Z. -Y., Xu, R., Qin, Y., Li, L., ... Zhang, X.-H. (2013). Solubilities of Rutaecarpine in Twelve Organic Solvents from (283.2 to 323.2) K. Journal of Chemical & Engineering Data, 58(7), 1969–1973. doi:10.1021/je4001334
[43] Wang, Z., Yu, Q., Liu, Y., Zhao, J., Lü, Z., & Sun, J. (2012). Solubilities of Bis(2,4,6-trimethylbenzoyl)phenylphosphine Oxide in Different Organic Solvents at Several Temperatures. Journal of Chemical & Engineering Data, 57(12), 3340–3343. doi:10.1021/je300343y
[44] Tian, N. -N., Wang, L. -S., & Jiang, R. -Y. (2011). Solubilities of Tris(o-phenylenedioxy)cyclotri phosphazene in Selected Solvents. Journal of Chemical & Engineering Data, 56(7), 3208–3213. doi:10.1021/je200252c
[45] Cui, P., Yin, Q., & Gong, J. (2011). Solubility of Candesartan Cilexetil in Different Solvents at Various Temperatures. Journal of Chemical & Engineering Data, 56(3), 658–660. doi:10.1021/je101020m
[46] Shakeel, F., Haq, N., Shazly, G. A., Alanazi, F. K., & Alsarra, I. A. (2015). Solubility and Thermodynamic Analysis of Tenoxicam in Different Pure Solvents at Different Temperatures. Journal of Chemical & Engineering Data, 60(8), 2510–2514. doi:10.1021/acs.jced.5b00382
[47] Zhang, F., Tang, Y., Wang, L., Xu, L., & Liu, G. (2015). Solubility Determination and Thermodynamic Models for 2-Methylnaphthalene in Different Solvents from T = (278.15 to 303.15) K. Journal of Chemical & Engineering Data, 60(6), 1699–1705. doi:10.1021/je5010627
[48] Zhao, H., Xu, H., Yang, Z., & Li, R. (2013). Solubility of 3,4-Dichloronitrobenzene in Methanol, Ethanol, and Liquid Mixtures (Methanol + Water, Ethanol + Water): Experimental Measurement and Thermodynamic Modeling. Journal of Chemical & Engineering Data, 58(11), 3061–3068. doi:10.1021/je400507u
[49] Wang, Y., Fu, S., Jia, Y., Qian, C., & Chen, X. (2013). Solubility of Benzyl Disulfide in Five Organic Solvents between (283.45 and 333.15) K. Journal of Chemical & Engineering Data, 58(9), 2483–2486. doi:10.1021/je400326r
[50] Fu, S., Wang, Y., Jia, Y., Qian, C., Tao, M., Lv, X., & Chen, X. (2013). Solubilities of 4-Amino-4′-nitrodiphenyl Sulfide in Six Organic Solvents from 287.45 K to 365.55 K. Journal of Chemical & Engineering Data, 58(6), 1675–1678. doi:10.1021/je4000982
[51] Wang, Y., Jia, Y., Qian, C., Tao, M., Lv, X., & Chen, X. (2013). Solubilities of 4,4′-Dichlorodiphenyl Disulfide in Six Organic Solvents between (303.15 and 333.15) K. Journal of Chemical & Engineering Data, 58(3), 660–662. doi:10.1021/je301243f
[52] Chen, Z., Xie, C., Xu, Z., Wang, Y., Zhao, H., & Hao, H. (2013). Determination and Correlation of Solubility Data and Dissolution Thermodynamic Data of l-Lactide in Different Pure Solvents. Journal of Chemical & Engineering Data, 58(1), 143–150. doi:10.1021/je301014d
[53] Zhang, Y., & Guo, S. (2011). Measurement and Correlation for Solubilities of 16-Dehydropregnenolone Acetate in Different Solvents. Journal of Chemical & Engineering Data, 56(5), 2403–2406. doi:10.1021/je1013262
[54] Zhang, L., Hu, Z., Jiang, B., & Huang, Y. D. (2011). Solubility of 2-Chloro-4,6-dinitroresorcinol in Ethanol, Methanol, Acetic Acid, Ethyl Acetate, and Water. Journal of Chemical & Engineering Data, 56(5), 2696–2699. doi:10.1021/je1011423
[55] Wang, S., Chen, N., & Qu, Y. (2011). Solubility of Florfenicol in Different Solvents at Temperatures from (278 to 318) K. Journal of Chemical & Engineering Data, 56(3), 638–641. doi:10.1021/je1008284
[56] Liu, J. -Q., Li, Y. -Y., Wang, A. -Y., Hong, D. -F., Zhang, L. -Y., Wu, S., ... Chen, S. -Y. (2014). 4-Amino-3,6-dichloropyridazine Solubility Measurement and Correlation in Seven Pure Organic Solvents from (278.15 to 333.15) K. Journal of Chemical & Engineering Data, 59(12), 3947–3952. doi:10.1021/je500286x
[57] Nan, G., Shi, J., Huang, Y., Sun, J., Lv, J., Yang, G., & Li, Y. (2014). Dissociation Constants and Solubilities of Daidzein and Genistein in Different Solvents. Journal of Chemical & Engineering Data, 59(4), 1304–1311. doi:10.1021/je4010905
[58] Liu, J.-Q., Cao, X.-X., Ji, B., & Zhao, B. (2013). Measurement and Correlation of Solubilities of Indole-2-carboxylic Acid in Ten Different Pure Solvents from (278.15 to 360.15) K. Journal of Chemical & Engineering Data, 58(12), 3309–3313. doi:10.1021/je400813d
[59] Gao, X., Xue, W. -L., Zeng, Z. -X., & Fan, X. -R. (2015). Determination and Correlation of Solubility of N-tert-Butylacrylamide in Seven Different Solvents at Temperatures between (279.15 and 353.15) K. Journal of Chemical & Engineering Data, 60(8), 2273–2279. doi:10.1021/acs.jced.5b00135
[60] Lei, Z., Hu, Y., Yang, W., Li, L., Chen, Z., & Yao, J. (2011). Solubility of 2-(2,4,6-Trichlorophenoxy)ethyl Bromide in Methanol, Ethanol, Propanol, Isopropanol, Acetonitrile, n-Heptane, and Acetone. Journal of Chemical & Engineering Data, 56(5), 2714–2719. doi:10.1021/je200074c
[61] Paus, R., Hart, E., Ji, Y., & Sadowski, G. (2015). Solubility and Caloric Properties of Cinnarizine. Journal of Chemical & Engineering Data, 60(8), 2256–2261. doi:10.1021/acs.jced.5b00075
[62] Zhi, W., Hu, Y., Yang, W., Kai, Y., & Cao, Z. (2013). Measurement and correlation of solubility of d-sorbitol in different solvents. Journal of Molecular Liquids, 187, 201–205. doi:http://dx.doi.org/10.1016/j.molliq.2013.07.014
[63] Wang, S., Li, Q. -S., Li, Z., & Su, M. -G. (2007). Solubility of Xylitol in Ethanol, Acetone, N,N-Dimethylformamide, 1-Butanol, 1-Pentanol, Toluene, 2-Propanol, and Water. Journal of Chemical & Engineering Data, 52(1), 186–188. doi:10.1021/je060348v
[64] Xue, M., Wu, S., Liu, W., Zhu, Q., Meng, Z., & Lin, Z. (2015). Solubility of 3,7-Dinitro-1,3,5,7-tetraazabicyclo [3.3.1] Nonane in Ethanenitrile, Methanol, 1,1-Dichloroethane, Dimethyl Sulfoxide, Acetone, and Mixed Solvents. Journal of Chemical & Engineering Data, 60(6), 1683–1687. doi:10.1021/acs.jced.5b00033
[65] Shakeel, F., Haq, N., Siddiqui, N. A., Alanazi, F. K., & Alsarra, I. A. (2015). Correlation of Solubility of Bioactive Compound Reserpine in Eight Green Solvents at (298.15 to 338.15) K. Journal of Chemical & Engineering Data, 60(3), 775–780. doi:10.1021/je500893g
[66] Deng, Y., Xu, L., Sun, X., Cheng, L., & Liu, G. (2015). Measurement and Correlation of the Solubility for 4,4′-Diaminodiphenylmethane in Different Solvents. Journal of Chemical & Engineering Data, 60(7), 2028–2034. doi:10.1021/je501111d
[67] Zhang, C., Liu, B., Wang, X., & Wang, H. (2014). Measurement and Correlation of the Solubilities of l-Valine in Water, Ethanol, N,N-Dimethylformamide, Acetone, and Isopropyl Alcohol between (293.15 and 343.15) K. Journal of Chemical & Engineering Data, 59(9), 2704–2708. doi:10.1021/je500035r
[68] Mullin, J. W. (2001). Crystallization. Retrieved from http://site.ebrary.com/id/10203512
[69] Diorazio, L. J., Hose, D. R. J., & Adlington, N. K. (2016). Toward a More Holistic Framework for Solvent Selection. Organic Process Research & Development, 20(4), 760–773. doi:10.1021/acs.oprd.6b00015