TY - JOUR
T1 - Solubility and thermodynamics of glyphosate in aqueous solutions with various components and pH
AU - Hu, Taotao
AU - Ma, Yixin
AU - Yang, Li
AU - Liu, Peng
AU - Fan, Yiqun
AU - Zhang, Yan
AU - Cheng, Jingcai
AU - Yang, Chao
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2023/7/15
Y1 - 2023/7/15
N2 - In this study, the solubility of glyphosate in three binary mixed solutions (sodium chloride + water, triethylamine hydrochloride + water, and glyphosine + water) and aqueous solutions with different initial pH values was determined by a static method within the temperature range from 293.15 K to 353.15 K. Interestingly, the effects of different components on the solubility of glyphosate in aqueous solutions are quite different. The solubility of glyphosate at different initial pH shows a significant U-shaped characteristic, with the lowest solubility at about pH 1.5. In the binary mixed solutions, when the concentration of NaCl increases, the solubility of glyphosate first increases and then decreases. The increase of the triethylamine hydrochloride concentration has a negative effect on the solubility of glyphosate, while the increase of the glyphosine concentration has a positive effect on the solubility of glyphosate. The effect of pH on the solubility of glyphosate was correlated with a pH correlation model, and the solubility of glyphosate in the three mixed solutions was correlated with the modified Apelblat equation, λh equation, Jouyban-Acree-Apelblat (J-A-A) model and the non-randomness two-liquid (NRTL) model. The values of root mean square deviation (RMSD) indicate a good correlation of the model. In addition, the mixed thermodynamic properties (ΔmixG, ΔmixH, and ΔmixS) of glyphosate in the three binary mixed solutions were calculated based on the NRTL model, and it was found that the mixing of glyphosate in all three systems was spontaneous, heat-absorbing and entropy-driven. The obtained solubility data and thermodynamic properties can provide theoretical guidance for the crystallization of glyphosate.
AB - In this study, the solubility of glyphosate in three binary mixed solutions (sodium chloride + water, triethylamine hydrochloride + water, and glyphosine + water) and aqueous solutions with different initial pH values was determined by a static method within the temperature range from 293.15 K to 353.15 K. Interestingly, the effects of different components on the solubility of glyphosate in aqueous solutions are quite different. The solubility of glyphosate at different initial pH shows a significant U-shaped characteristic, with the lowest solubility at about pH 1.5. In the binary mixed solutions, when the concentration of NaCl increases, the solubility of glyphosate first increases and then decreases. The increase of the triethylamine hydrochloride concentration has a negative effect on the solubility of glyphosate, while the increase of the glyphosine concentration has a positive effect on the solubility of glyphosate. The effect of pH on the solubility of glyphosate was correlated with a pH correlation model, and the solubility of glyphosate in the three mixed solutions was correlated with the modified Apelblat equation, λh equation, Jouyban-Acree-Apelblat (J-A-A) model and the non-randomness two-liquid (NRTL) model. The values of root mean square deviation (RMSD) indicate a good correlation of the model. In addition, the mixed thermodynamic properties (ΔmixG, ΔmixH, and ΔmixS) of glyphosate in the three binary mixed solutions were calculated based on the NRTL model, and it was found that the mixing of glyphosate in all three systems was spontaneous, heat-absorbing and entropy-driven. The obtained solubility data and thermodynamic properties can provide theoretical guidance for the crystallization of glyphosate.
KW - Glyphosate
KW - Mixing properties
KW - Mother liquor components
KW - Solubility
KW - pH
UR - http://www.scopus.com/inward/record.url?scp=85158879419&partnerID=8YFLogxK
U2 - 10.1016/j.molliq.2023.121919
DO - 10.1016/j.molliq.2023.121919
M3 - 文章
AN - SCOPUS:85158879419
SN - 0167-7322
VL - 382
JO - Journal of Molecular Liquids
JF - Journal of Molecular Liquids
M1 - 121919
ER -