Molecular Simulation of Aqueous Electrolyte Solubility. 3. Alkali-Halide Salts and Their Mixtures in Water and in Hydrochloric Acid

被引:67
作者
Moucka, Filip [1 ]
Lisal, Martin [2 ,3 ]
Smith, William R. [1 ]
机构
[1] Univ Ontario, Fac Sci, Inst Technol, Oshawa, ON L1H 7K4, Canada
[2] Univ JE Purkyne, Dept Phys, Fac Sci, Usti Lab, Prague 40096, Czech Republic
[3] Acad Sci Czech Republ, Inst Chem Proc Fundamentals, E Hala Lab Thermodynam, VVI, CR-16502 Prague 6, Czech Republic
基金
加拿大自然科学与工程研究理事会;
关键词
FREE-ENERGY; NUCLEATION; PARAMETERS; PHASES; NACL;
D O I
10.1021/jp301447z
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We extend the osmotic ensemble Monte Carlo (OEMC) molecular simulation method (Moucka et al. J. Phys Chem. B 2011, 115, 7849-7861) for directly calculating the aqueous solubility of electrolytes and for calculating their chemical potentials as functions of concentration to cases involving electrolyte hydrates and mixed electrolytes, including invariant points involving simultaneous precipitation of several solutes. The method utilizes a particular semigrand canonical ensemble, which performs simulations of the solution at a fixed number of solvent molecules, pressure, temperature, and specified overall electrolyte chemical potential. It avoids calculations for the solid phase, incorporating available solid chemical potential data from thermochemical tables, which are based on well-defined reference states, or from other sources. We apply the method to a range of alkali halides in water and to selected examples involving LiCl monohydrate, mixed electrolyte solutions involving water and hydrochloric acid, and invariant points in these solvents. The method uses several existing force-field models from the literature, and the results are compared with experiment. The calculated results agree qualitatively well with the experimental trends and are of reasonable accuracy. The accuracy of the calculated solubility is highly dependent on the solid chemical potential value and also on the force-field model used. Our results indicate that pairwise additive effective force-field models developed for the solution phase are unlikely to also be good models for the corresponding crystalline solid. We find that, in our OEMC simulations, each ionic force-field model is characterized by a limiting value of the total solution chemical potential and a corresponding aqueous concentration. For higher values of the imposed chemical potential, the solid phase in the simulation grows in size without limit.
引用
收藏
页码:5468 / 5478
页数:11
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