Artículo
Prediction of the Hildebrand parameter of various solvents using linear and nonlinear approaches
Fecha de publicación:
06/2010
Editorial:
Elsevier Science
Revista:
Fluid Phase Equilibria
ISSN:
0378-3812
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
The Hildebrand solubility parameter (ý) provides a numerical estimate of the degree of interaction between materials, and can be a good indication of solubility. In this work, a small number of physicochemical variables were appropriately selected from a pool of Dragon descriptors and correlated with the Hildebrand thermodynamic parameter of compounds previously studied as organic solvents of buckminsterfullerene (C60), using multiple linear regression and support vector machines. Models were validated using an external set of compounds and the statistical parameters obtained revealed the high prediction performance of all models, especially the one based on nonlinear regression. These findings provide useful information about which solvent and corresponding characteristics are important for solubility studies of e.g. this increasingly useful carbon allotrope.
Palabras clave:
QSPR
,
Artificial Neural Networks
,
Hildebrand parameter
,
fullerene
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Articulos(INIFTA)
Articulos de INST.DE INV.FISICOQUIMICAS TEORICAS Y APLIC.
Articulos de INST.DE INV.FISICOQUIMICAS TEORICAS Y APLIC.
Citación
Goodarzi, Mohammad; Duchowicz, Pablo Román; Freitas, Matheus P.; Fernández, Francisco Marcelo; Prediction of the Hildebrand parameter of various solvents using linear and nonlinear approaches; Elsevier Science; Fluid Phase Equilibria; 293; 2; 6-2010; 130-136
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