Cargando…

Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems

The current research work was performed to evaluate the solubilization behavior, solution thermodynamics, and solvation behavior of poorly soluble pyridazinone derivative i.e., 6-phenyl-pyridazin-3(2H)-one (PPD) in various binary solvent systems of dimethyl sulfoxide (DMSO) and water using experimen...

Descripción completa

Detalles Bibliográficos
Autores principales: Shakeel, Faiyaz, Alshehri, Sultan, Imran, Mohd, Haq, Nazrul, Alanazi, Abdullah, Anwer, Md. Khalid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6983045/
https://www.ncbi.nlm.nih.gov/pubmed/31906205
http://dx.doi.org/10.3390/molecules25010171
_version_ 1783491429337661440
author Shakeel, Faiyaz
Alshehri, Sultan
Imran, Mohd
Haq, Nazrul
Alanazi, Abdullah
Anwer, Md. Khalid
author_facet Shakeel, Faiyaz
Alshehri, Sultan
Imran, Mohd
Haq, Nazrul
Alanazi, Abdullah
Anwer, Md. Khalid
author_sort Shakeel, Faiyaz
collection PubMed
description The current research work was performed to evaluate the solubilization behavior, solution thermodynamics, and solvation behavior of poorly soluble pyridazinone derivative i.e., 6-phenyl-pyridazin-3(2H)-one (PPD) in various binary solvent systems of dimethyl sulfoxide (DMSO) and water using experimental and various computational approaches. The solubility of PPD in various binary solvent system of DMSO and water was investigated within the temperature range T = 298.2 K to 318.2 K at constant air pressure p = 0.1 MPa, by employing an isothermal technique. The generated solubility data of PPD was computationally represented by five different cosolvency models including van’t Hoff, Apelblat, Yalkowsky–Roseman, Jouyban–Acree, and Jouyban–Acree–van’t Hoff models. The performance of each computational model for correlation studies was illustrated using root mean square deviations (RMSD). The overall RMSD value was obtained <2.0% for each computational model. The maximum solubility of PPD in mole fraction was recorded in neat DMSO (4.67 × 10(−1) at T = 318.2 K), whereas the lowest one was obtained in neat water (5.82 × 10(−6) at T = 298.2 K). The experimental solubility of PPD in mole fraction in neat DMSO was much higher than its ideal solubility, indicating the potential of DMSO for solubility enhancement of PPD. The computed values of activity coefficients showed maximum molecular interaction in PPD-DMSO compared with PPD-water. Thermodynamic evaluation showed an endothermic and entropy-driven dissolution of PPD in all the mixtures of DMSO and water. Additionally, enthalpy–entropy compensation evaluation indicated an enthalpy-driven mechanism as a driven mechanism for the solvation property of PPD.
format Online
Article
Text
id pubmed-6983045
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-69830452020-02-06 Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems Shakeel, Faiyaz Alshehri, Sultan Imran, Mohd Haq, Nazrul Alanazi, Abdullah Anwer, Md. Khalid Molecules Article The current research work was performed to evaluate the solubilization behavior, solution thermodynamics, and solvation behavior of poorly soluble pyridazinone derivative i.e., 6-phenyl-pyridazin-3(2H)-one (PPD) in various binary solvent systems of dimethyl sulfoxide (DMSO) and water using experimental and various computational approaches. The solubility of PPD in various binary solvent system of DMSO and water was investigated within the temperature range T = 298.2 K to 318.2 K at constant air pressure p = 0.1 MPa, by employing an isothermal technique. The generated solubility data of PPD was computationally represented by five different cosolvency models including van’t Hoff, Apelblat, Yalkowsky–Roseman, Jouyban–Acree, and Jouyban–Acree–van’t Hoff models. The performance of each computational model for correlation studies was illustrated using root mean square deviations (RMSD). The overall RMSD value was obtained <2.0% for each computational model. The maximum solubility of PPD in mole fraction was recorded in neat DMSO (4.67 × 10(−1) at T = 318.2 K), whereas the lowest one was obtained in neat water (5.82 × 10(−6) at T = 298.2 K). The experimental solubility of PPD in mole fraction in neat DMSO was much higher than its ideal solubility, indicating the potential of DMSO for solubility enhancement of PPD. The computed values of activity coefficients showed maximum molecular interaction in PPD-DMSO compared with PPD-water. Thermodynamic evaluation showed an endothermic and entropy-driven dissolution of PPD in all the mixtures of DMSO and water. Additionally, enthalpy–entropy compensation evaluation indicated an enthalpy-driven mechanism as a driven mechanism for the solvation property of PPD. MDPI 2019-12-31 /pmc/articles/PMC6983045/ /pubmed/31906205 http://dx.doi.org/10.3390/molecules25010171 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shakeel, Faiyaz
Alshehri, Sultan
Imran, Mohd
Haq, Nazrul
Alanazi, Abdullah
Anwer, Md. Khalid
Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems
title Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems
title_full Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems
title_fullStr Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems
title_full_unstemmed Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems
title_short Experimental and Computational Approaches for Solubility Measurement of Pyridazinone Derivative in Binary (DMSO + Water) Systems
title_sort experimental and computational approaches for solubility measurement of pyridazinone derivative in binary (dmso + water) systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6983045/
https://www.ncbi.nlm.nih.gov/pubmed/31906205
http://dx.doi.org/10.3390/molecules25010171
work_keys_str_mv AT shakeelfaiyaz experimentalandcomputationalapproachesforsolubilitymeasurementofpyridazinonederivativeinbinarydmsowatersystems
AT alshehrisultan experimentalandcomputationalapproachesforsolubilitymeasurementofpyridazinonederivativeinbinarydmsowatersystems
AT imranmohd experimentalandcomputationalapproachesforsolubilitymeasurementofpyridazinonederivativeinbinarydmsowatersystems
AT haqnazrul experimentalandcomputationalapproachesforsolubilitymeasurementofpyridazinonederivativeinbinarydmsowatersystems
AT alanaziabdullah experimentalandcomputationalapproachesforsolubilitymeasurementofpyridazinonederivativeinbinarydmsowatersystems
AT anwermdkhalid experimentalandcomputationalapproachesforsolubilitymeasurementofpyridazinonederivativeinbinarydmsowatersystems