Amines play several key roles in chemistry and biology and are involved in numerous industrial processes, often with significant economic impacts. Recently, amines are also garnering interest as catalysts for polymer synthesis and for CO2 fixation, incentivizing the need to rapidly design and screen new amino compounds. Hence, developing reliable methods to predict their physicochemical properties, e.g., the base dissociation constant (pKb), is pivotal. Here, a density functional theory (DFT)-based approach was employed to compute the pKb of substituted amines, exploring the impact of several key parameters, including (i) the number of explicit water molecules at the reaction center, (ii) the van der Waals (vdW) surface, and (iii) solvent polarizability. In previous work, it was determined that including two explicit water molecules at the reaction center resulted in highly accurate pKb estimates for primary amines. Here, we find that including a third water molecule at the reaction center is essential for accurate pKb for secondary and tertiary amines. The revised methodology was then applied to a wider selection of amines, obtaining a minimum average error (MAE) < 0.4. This result represents an extension of our “easy-to-use method,” a simple and direct DFT approach exploiting CAM-B3LYP/SMD/6-311G+(d,p) to compute pKb without post facto modifications.

Pezzola, S., Schultz, N., Knott, B.c., Venanzi, M., Sabuzi, F., Galloni, P. (2026). Accurate Prediction of pKb in Amines: Validation of the CAM-B3LYP/6-311+G(d,p)/SMD Model. THE JOURNAL OF PHYSICAL CHEMISTRY. A., 130(8), 1607-1614 [10.1021/acs.jpca.5c07106].

Accurate Prediction of pKb in Amines: Validation of the CAM-B3LYP/6-311+G(d,p)/SMD Model

Silvia Pezzola;Mariano Venanzi;Federica Sabuzi
;
Pierluca Galloni
2026-01-01

Abstract

Amines play several key roles in chemistry and biology and are involved in numerous industrial processes, often with significant economic impacts. Recently, amines are also garnering interest as catalysts for polymer synthesis and for CO2 fixation, incentivizing the need to rapidly design and screen new amino compounds. Hence, developing reliable methods to predict their physicochemical properties, e.g., the base dissociation constant (pKb), is pivotal. Here, a density functional theory (DFT)-based approach was employed to compute the pKb of substituted amines, exploring the impact of several key parameters, including (i) the number of explicit water molecules at the reaction center, (ii) the van der Waals (vdW) surface, and (iii) solvent polarizability. In previous work, it was determined that including two explicit water molecules at the reaction center resulted in highly accurate pKb estimates for primary amines. Here, we find that including a third water molecule at the reaction center is essential for accurate pKb for secondary and tertiary amines. The revised methodology was then applied to a wider selection of amines, obtaining a minimum average error (MAE) < 0.4. This result represents an extension of our “easy-to-use method,” a simple and direct DFT approach exploiting CAM-B3LYP/SMD/6-311G+(d,p) to compute pKb without post facto modifications.
2026
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHEM-05/A - Chimica organica
Settore CHEM-02/A - Chimica fisica
English
Con Impact Factor ISI
Pezzola, S., Schultz, N., Knott, B.c., Venanzi, M., Sabuzi, F., Galloni, P. (2026). Accurate Prediction of pKb in Amines: Validation of the CAM-B3LYP/6-311+G(d,p)/SMD Model. THE JOURNAL OF PHYSICAL CHEMISTRY. A., 130(8), 1607-1614 [10.1021/acs.jpca.5c07106].
Pezzola, S; Schultz, N; Knott, Bc; Venanzi, M; Sabuzi, F; Galloni, P
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/454183
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