Search results for "Quantum Chemical Topology"

showing 2 items of 2 documents

The nature of inter- and intramolecular interactions in F2OXe…HX (X= F, Cl, Br, I) complexes

2015

Electronic structure of the XeOF2 molecule and its two complexes with HX (X= F, Cl, Br, I) molecules have been studied in the gas phase using quantum chemical topology methods: topological analysis of electron localization function (ELF), electron density, ρ(r), reduced gradient of electron density |RDG(r)| in real space, and symmetry adapted perturbation theory (SAPT) in the Hilbert space. The wave function has been approximated by the MP2 and DFT methods, using APF-D, B3LYP, M062X, and B2PLYP functionals, with the dispersion correction as proposed by Grimme (GD3). For the Xe-F and Xe=O bonds in the isolated XeOF2 molecule, the bonding ELF-localization basins have not been observed. Accord…

Electron densityQuantum chemical topologyXenonksenonElectronic structure010402 general chemistrynoble gas complexes01 natural sciencesCatalysisNoble gas complexesInorganic ChemistryComputational chemistry0103 physical sciencesMoleculePhysical and Theoretical ChemistryTopology (chemistry)Original Paper010304 chemical physicsSAPTHydrogen bondChemistryOrganic ChemistryElectron localization function0104 chemical sciencesComputer Science ApplicationsCrystallographyELFComputational Theory and MathematicsCovalent bondIntramolecular forcequantum chemical topology
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New insights in chemical reactivity from quantum chemical topology.

2021

International audience; Based on the quantum chemical topology of the modified electron localization function ELFx, an efficient and robust mechanistic methodology designed to identify the favorable reaction pathway between two reactants is proposed. We first recall and reshape how the supermolecular interaction energy can be evaluated from only three distinct terms, namely the intermolecular coulomb energy, the intermolecular exchange‐correlation energy and the intramolecular energies of reactants. Thereafter, we show that the reactivity between the reactants is driven by the first‐order variation in the coulomb intermolecular energy defined in terms of the response to changes in the numbe…

Water dimerQuantum Chemical TopologyMaterials science010304 chemical physicsHydrogen bondIntermolecular forceGeneral ChemistryInteraction energy010402 general chemistryTopology01 natural scienceselectrophile0104 chemical sciencesComputational Mathematicselectron localization functionIntramolecular force0103 physical sciences[CHIM]Chemical SciencesMoleculeChemical ReactivityFrontier Molecular Orbital Theory[INFO]Computer Science [cs]Reactivity (chemistry)nucleophileTopology (chemistry)Journal of computational chemistryREFERENCES
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