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From weak to strong interactions: A comprehensive analysis of the topological and energetic properties of the electron density distribution involving X–H⋯F–Y systems

Enrique Espinosa, +3 more
- 04 Sep 2002 - 
- Vol. 117, Iss: 12, pp 5529-5542
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TLDR
In this paper, the topological and energetic properties of the electron density distribution ρ(r) of isolated pairwise H⋯F interaction have been theoretically calculated at several geometries and represented against the corresponding internuclear distances.
Abstract
The topological and energetic properties of the electron density distribution ρ(r) of the isolated pairwise H⋯F interaction have been theoretically calculated at several geometries (0.8<d<2.5 A) and represented against the corresponding internuclear distances. From long to short geometries, the results presented here lead to three characteristic regions, which correspond to three different interaction states. While the extreme regions are associated to pure closed-shell (CS) and shared-shell (SS) interactions, the middle one has been related to the redistribution of ρ(r) between those electronic states. The analysis carried out with this system has permitted to associate the transit region between pure CS and SS interactions to internuclear geometries involved in the building of the H–F bonding molecular orbital. A comparative analysis between the formation of this orbital and the behavior of some characteristic ρ(r) properties has indicated their intrinsic correspondence, leading to the definition of a bond degree parameter [BD=HCP/ρCP; HCP and ρCP being the total electron energy density and the electron density value at the H⋯F (3,−1) critical point]. Along with the isolated pairwise H⋯F interaction, 79 X–H⋯F–Y (neutral, positively and negatively charged) complexes have been also theoretically considered and analyzed in terms of relevant topological and energetic properties of ρ(r) found at their H⋯F critical points. In particular, the interaction energies of X–H⋯F–Y pure CS interactions have been estimated by using the bond degree parameter. On the other hand, the [F⋯H⋯F]− proton transfer geometry has been related to the local maximum of the electron kinetic energy density (GCP)max.

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Citations
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Experimental (X-ray, TGA) and computation (NBO, AIM) studies of Iron(II) complex with thiabendazole and 5-aminoisophthalate

TL;DR: In this article, the authors synthesized the coordination complex: thiabendazole (TBZH) iron 5-aminoisophthalate (AIP), and characterized by the X-ray single crystal diffraction analysis, the result reveals the iron center is six coordinated and formed a slightly distorted octahedron coordinated geometry.
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Cation dinitrogen complexes [N2⋯X⋯N2]+, X+=H+, Li+, Na+, Be2+, Mg2+

TL;DR: The atoms in molecules methodology has been used to analyze energy, charge and volume of these complexes of dinitrogen up to four N(2) molecules at the MP2/6-311++G(d,p) level.
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XPS and quantum chemical investigation of electronic structure of Co complexes with calix[4]arenes modified by R2PO groups in upper or lower rim

TL;DR: In this article, the experimental and calculated data, the Co atoms are in the oxidation state 2+ for all compounds, and the energies and shapes of the Ru(3p3/2)-lines indicate formal oxidation states of Ru(II).
Journal ArticleDOI

Theoretical Insights into Phenanthroline-Based Ligands toward the Separation of Am(III)/Eu(III).

TL;DR: In this paper , the bistriazinyl-phenanthroline representative ligand, BTPhen, shows excellent extraction and separation ability for trivalent actinides and lanthanides.
References
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Journal ArticleDOI

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Chr. Møller, +1 more
- 01 Oct 1934 - 
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Journal ArticleDOI

Self‐consistent molecular orbital methods 25. Supplementary functions for Gaussian basis sets

TL;DR: In this paper, a modified basis set of supplementary diffuse s and p functions, multiple polarization functions (double and triple sets of d functions), and higher angular momentum polarization functions were defined for use with the 6.31G and 6.311G basis sets.
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