Skip to content

Author

José G. Parra

1 paper indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Aug 2026

Revisiting the prediction of the partition coefficient using variables determined by the conductor-like polarizable continuum model

Using the method of solvation Conductor-like Polarizable Continuum Model (C-PCM) and the method of Amovilli-Menucci contained in the GAMESS-US package, were estimated the electrostatic, dispersion and repulsion free energies of organic molecules in 1-octanol and water. The calculations of solvation in water and 1-octanol were performed using the method C-PCM//PBE-VWN/6-31G (2p, 2d), to determine the electrostatic contribution to the solvation free energy. Consequently, using the concept of structure-property relationship was obtained a QSPR model to estimate the cavitation free energies of organic molecules with the experimental solvation free energies. Additionally, with the surface atomics (C, H, N and O) of the atoms that conform to the organic molecules calculated by the method GEPOL-GB, the electrostatic free energies, and non-bonding free energies, two QSPR models were constructed to predict the 1‑octanol/water partition coefficient (logP) for neutral organic molecules containing a single functional group from the following classes: alcohols, ketones, aldehydes, carboxylic acids, esters, ethers, amines, alkanes (linear and cyclic), and aromatic compounds. Model A, which uses electrostatic free energies and atomic surface areas, achieved a correlation coefficient of R² = 0.991, while Model B, which incorporates non-bonding free energies, achieved R² = 0.986. The applicability domain of the models is explicitly defined for monofunctional compounds at infinite dilution and 298.15 K.

José G. Parra · 0 citations