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May 7, 2026Journal of Chemical & Engineering Data0 citations

Solubility Determination, Thermodynamic Analysis, and Molecular Simulation of Anastrozole (I) in Pure and Binary Solvents

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SLSai LiSZShiyu ZhangJTJia Tong

Key Points

  • The aim is to evaluate the solubility and thermodynamic behavior of anastrozole (I) in different solvent systems.
  • Equilibrium gravimetric measurements conducted between 283.15 and 323.15 K under ambient pressure.
  • Four thermodynamic models were applied to correlate experimental data: van’t Hoff, modified Apelblat, RK-4, and λh models.
  • Analyses included FT-IR, PXRD, and TG-DSC to investigate structural stability.
  • Solubility of anastrozole (I) positively correlates with temperature.
  • The modified Apelblat equation provided superior data fitting compared to other models.
  • Thermodynamic analysis revealed the dissolution process is endothermic and driven by enthalpy.

Abstract

The solubility and thermodynamic profile of anastrozole (I) were comprehensively examined across diverse solvent systems through equilibrium gravimetric measurements conducted between 283.15 and 323.15 K under ambient pressure. The measured solubility of anastrozole (I) showed a positive correlation with temperature. Subsequently, the experimental data were correlated using four thermodynamic models, namely, the van’t Hoff, modified Apelblat, RK-4, and λh models. The results indicated that all models can reproduce the experimental data with high accuracy, among which the Apelblat equation exhibited a superior fitting performance compared with the other models. Then, thermodynamic analysis based on the van’t Hoff and Gibbs equations indicated that the dissolution process of anastrozole (I) is endothermic and enthalpy-driven in all the studied systems. Moreover, FT-IR, PXRD, and TG-DSC analyses indicated that anastrozole (I) possessed a stable structure during the solubility experiments. Furthermore, molecular simulation results supported the experimental observations by indicating that hydrogen bonding and dispersion forces play key roles in solute–solvent interactions. The dissolution behavior was dependent on solvent polarity and the solvation free energy.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69fc2c718b49bacb8b347ef7https://doi.org/10.1021/acs.jced.6c00083
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