scholarly journals A Quantum Chemical Topology Picture of Intermolecular Electrostatic Interactions and Charge Penetration Energy

Author(s):  
Fernando Jiménez-Grávalos ◽  
Dimas Suárez

<div>Basing on the Interacting Quantum Atoms approach, we present herein a conceptual and theoretical framework of short-range electrostatic interactions, whose accurate description is still a challenging problem in molecular modeling. For all the non-covalent complexes in the S66 database, the fragment-based and atomic decomposition of the electrostatic binding energies is performed using both the charge density of the dimers and the unrelaxed densities of the monomers. This energy decomposition together with dispersion corrections gives rise to a pairwise approximation to the total binding energy. It also provides energetic descriptors at varying distance that directly address the atomic and molecular electrostatic interactions as described by point-charge or multipole-based potentials. Additionally, we propose a consistent definition of the charge penetration energy within quantum chemical topology, which is mainly characterized in terms of the intramolecular electrostatic energy. Finally, we discuss some practical implications of our results for the design and validation of electrostatic potentials.</div>

2021 ◽  
Author(s):  
Fernando Jiménez-Grávalos ◽  
Dimas Suárez

<div>Basing on the Interacting Quantum Atoms approach, we present herein a conceptual and theoretical framework of short-range electrostatic interactions, whose accurate description is still a challenging problem in molecular modeling. For all the non-covalent complexes in the S66 database, the fragment-based and atomic decomposition of the electrostatic binding energies is performed using both the charge density of the dimers and the unrelaxed densities of the monomers. This energy decomposition together with dispersion corrections gives rise to a pairwise approximation to the total binding energy. It also provides energetic descriptors at varying distance that directly address the atomic and molecular electrostatic interactions as described by point-charge or multipole-based potentials. Additionally, we propose a consistent definition of the charge penetration energy within quantum chemical topology, which is mainly characterized in terms of the intramolecular electrostatic energy. Finally, we discuss some practical implications of our results for the design and validation of electrostatic potentials.</div>


2018 ◽  
Vol 20 (43) ◽  
pp. 27558-27570 ◽  
Author(s):  
Jesús Jara-Cortés ◽  
Bruno Landeros-Rivera ◽  
Jesús Hernández-Trujillo

The interacting quantum atoms method provides an interpretative tool for chemical reaction energies in terms of physically meaningful atomic contributions.


2013 ◽  
Vol 87 (4) ◽  
pp. 048106 ◽  
Author(s):  
A Martín Pendás ◽  
E Francisco ◽  
A Costales

2017 ◽  
Vol 4 (8) ◽  
pp. 1541-1554 ◽  
Author(s):  
Pedro Merino ◽  
Maria A. Chiacchio ◽  
Laura Legnani ◽  
Ignacio Delso ◽  
Tomas Tejero

Quantum chemical topology analyses provide a new way of understanding the synchronicity of organic reactions.


2020 ◽  
Vol 7 (6) ◽  
pp. 1036-1045 ◽  
Author(s):  
Zhangyun Liu ◽  
Zheng Chen ◽  
Jinyang Xi ◽  
Xin Xu

Abstract Non-covalent interactions between ions and π systems play an important role in molecular recognition, catalysis and biology. To guide the screen and design for artificial hosts, catalysts and drug delivery, understanding the physical nature of ion–π complexes via descriptors is indispensable. However, even with multiple descriptors that contain the leading term of electrostatic and polarized interactions, the quantitative description for the binding energies (BEs) of ion–π complexes is still lacking because of the intrinsic shortcomings of the commonly used descriptors. Here, we have shown that the impartment of orbital details into the electrostatic energy (coined as OEE) makes an excellent single descriptor for BEs of not only spherical, but also multiply-shaped, ion–π systems, highlighting the importance of an accurate description of the electrostatic interactions. Our results have further demonstrated that OEEs from a low-level method could be calibrated to BEs from a high-level method, offering a powerful practical strategy for an accurate prediction of a set of ion–π interactions.


2016 ◽  
Vol 18 (38) ◽  
pp. 26383-26390 ◽  
Author(s):  
José Manuel Guevara-Vela ◽  
Eduardo Romero-Montalvo ◽  
Aurora Costales ◽  
Ángel Martín Pendás ◽  
Tomás Rocha-Rinza

We give a new interpretation of Resonance Assisted Hydrogen Bonds (RAHBs) in which RAHB formation leads to an overall electron localization excluding covalency as the main source of stabilization. The most relevant contributions to the RAHB energetics are electrostatics, polarization and charge transfer.


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