Thermodynamic models for determination of solid–liquid equilibrium of the 6-benzyladenine in pure and binary organic solvents

Tao Li, Renlun Deng, Gang Wu, Pengfei Gu, Yonghong Hu, Wenge Yang, Yemin Yu, Yuhao Zhang, Chen Yang

Research output: Contribution to journalArticlepeer-review

8 Scopus citations

Abstract

Data on corresponding solid–liquid equilibrium of 6-benzyladenine in different solvents are essential for a preliminary study of industrial applications. In this paper, the solid–liquid equilibrium of 6-benzyladenine in methanol, ethanol, 1-butanol, acetone, acetonitrile, ethyl acetate, dimethyl formamide and tetrahydrofuran pure solvents and (dimethyl formamide + actone) mixture solvents was explored within the temperature range from (278.15 to 333.15) K under 0.1 MPa. For the temperature range investigated, the solubility of 6-benzyladenine in the solvents increased with increasing temperature. The solubility of 6-benzyladenine in dimethyl formamide is superior to other selected pure solvents. The modified Apelblat model, the Buchowski-Ksiazaczak λh model, and the ideal model were adopted to describe and predict the change tendency of solubility. Computational results showed that the modified Apelblat model has more advantages than the other two models. The solubility results were fitted using a modified Apelblat equation, a variant of the combined nearly ideal binary solvent/Redich-Kister (CNIBS/R-K) model, Jouyban-Acree model and Ma model in (dimethyl formamide + acetone) binary solvent mixture. Computational results showed that the modified Apelblat model is superior to the other equations.

Original languageEnglish
Pages (from-to)208-215
Number of pages8
JournalJournal of Chemical Thermodynamics
Volume106
DOIs
StatePublished - 1 Mar 2017

Keywords

  • 6-Benzyladenine
  • Apelblat model
  • Ma model
  • The ideal model
  • λh model

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