2015
DOI: 10.1107/s2052520615015279
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Combined analysis of chemical bonding in a CuIIdimer using QTAIM, Voronoi tessellation and Hirshfeld surface approaches

Abstract: Interaction of 1-(1H-pyrazol-5-yl)ethanone oxime (H2PzOx) with copper(II) chloride in the presence of pyridine afforded a binuclear discrete [Cu2(HPzOx)2Cl2py2] complex, which was characterized by Fourier transform-IR and electron paramagnetic resonance (EPR) spectra, magnetochemistry and high-resolution X-ray diffraction experiments. Multipole refinement of X-ray diffraction data and density-functional theory (DFT) calculations of an isolated molecule allowed charge and spin distributions to be obtained for t… Show more

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Cited by 13 publications
(8 citation statements)
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“…H interactions can also be found within this approximation. This result in accord with previously reported comparison of QTAIM and Voronoi approaches to describe chemical bonding in crystals [51][52][53][54]. Possibility to automatically distinguish bonding interactions among the whole set of contacts can be very helpful for comparison of bonding sets at initial and final stages of a solid-state reaction.…”
Section: Charge-density Analysis Of Intermolecular Bonding Insupporting
confidence: 90%
“…H interactions can also be found within this approximation. This result in accord with previously reported comparison of QTAIM and Voronoi approaches to describe chemical bonding in crystals [51][52][53][54]. Possibility to automatically distinguish bonding interactions among the whole set of contacts can be very helpful for comparison of bonding sets at initial and final stages of a solid-state reaction.…”
Section: Charge-density Analysis Of Intermolecular Bonding Insupporting
confidence: 90%
“…[65] The total energy of interactions per molecule, estimated as the sum of individual E A-B values, gives a reasonable value of 40.8 kcal mol -1 , which is 2.5 times as large as the value of 17.0 kcal mol -1 for 1-phenyl-o-carborane. [66] The molecular Hirshfeld surfaces and Voronoi tessellation give the same types of intermolecular bonds, and partial contributions of various types of intermolecular contacts to the total molecular area determined by both methods are similar ( Figure 5, c), as was recently demonstrated for small organic [67] and organometallic [55,68,69] compounds. It is worth noting that in the Voronoi tessellation approach bonding H···H contacts can be distinguished from nonbonding ones by the high value of the Voronoi polyhedron face common to two hydrogen atoms (Ͼ10 % of the full solid angle of 4π steradian, Table S6 in the Supporting Information), and also that the H···H interactions can be separated into B-H···H-C, C-H···H-C, and B-H···H-B contacts, which can be helpful for investigation of dihydrogen bonding in molecular crystals.…”
Section: Esp Distribution and Dihydrogen Bondingmentioning
confidence: 53%
“…As has previously been demonstrated for ionic conductors, [54] copper complexes, [30,55] and the zincocene family, [36] atomic Hirshfeld surfaces (AHSs) allow additional qualitative characterization of chemical bonding without timeconsuming calculations. The AHSs of Cu1 and Co3 atoms in 1 are depicted in Figure 4.…”
Section: The Atomic Hirshfeld Surfaces and Voronoi Polyhedramentioning
confidence: 98%
“…Metal–ligand bonds are highly polar and usually represent a borderline case between covalent and ionic. Accurate X-ray charge density studies of quite a few metal complexes revealed low electron density at bonding critical points (≪1 e Å –3 ) and positive Laplacians, which are not indicative of covalent bonding. Our charge density studies of two metal-quinone complexes, [Cu­(CA) 2 (H 2 O) 2 ]­Him 2 (im = imidazole) and [Mn­(CA)­(H 2 O)] n (electron densities ranging between 0.30 and 0.40 e Å –3 , positive Laplacian values) also do not support the notion of covalent metal–ligand bonds .…”
Section: Meduim Strong Stacking: Predominantly Electrostatic and Pola...mentioning
confidence: 99%