Polarization of Electron Density Databases of Transferable Multipolar Atoms
Author(s) -
Théo Leduc,
Emmanuel Aubert,
Enrique Espinosa,
Christian Jelsch,
Cristian Iordache,
Benoît Guillot
Publication year - 2019
Publication title -
the journal of physical chemistry a
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.756
H-Index - 235
eISSN - 1520-5215
pISSN - 1089-5639
DOI - 10.1021/acs.jpca.9b05051
Subject(s) - polarizability , transferability , electron density , electron , density functional theory , quantum , molecule , polarization (electrochemistry) , atomic physics , atoms in molecules , dielectric , chemistry , database , chemical physics , molecular physics , physics , computational chemistry , quantum mechanics , computer science , logit , machine learning
Polarizability is a key molecular property involved in either macroscopic (i.e., dielectric constant) and microscopic properties (i.e., interaction energies). In rigid molecules, this property only depends on the ability of the electron density (ED) to acquire electrostatic moments in response to applied electric fields. Databases of transferable electron density fragments are a cheap and efficient way to access molecular EDs. This approach is rooted in the relative conservation of the atomic ED between different molecules, termed transferability principle. The present work discusses the application of this transferability principle to the polarizability, an electron density-derived property, partitioned in atomic contributions using the Quantum Theory of Atoms In Molecules topology. The energetic consequences of accounting for in situ deformation (polarization) of database multipolar atoms are investigated in detail by using a high-quality quantum chemical benchmark.
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