scholarly journals An Interacting Quantum Atoms (IQA) and Relative Energy Gradient (REG) Study of the Halogen Bond with Explicit Analysis of Electron Correlation

Molecules ◽  
2020 ◽  
Vol 25 (11) ◽  
pp. 2674 ◽  
Author(s):  
Ibon Alkorta ◽  
Arnaldo F. Silva ◽  
Paul L. A. Popelier

Energy profiles of seven halogen-bonded complexes were analysed with the topological energy partitioning called Interacting Quantum Atoms (IQA) at MP4(SDQ)/6–31 + G(2d,2p) level of theory. Explicit interatomic electron correlation energies are included in the analysis. Four complexes combine X2 (X = Cl or F) with HCN or NH3, while the remaining three combine ClF with HCN, NH3 or N2. Each complex was systematically deformed by translating the constituent molecules along its central axis linking X and N, and reoptimising its remaining geometry. The Relative Energy Gradient (REG) method (Theor. Chem. Acc. 2017, 136, 86) then computes which IQA energies most correlate with the total energy during the process of complex formation and further compression beyond the respective equilibrium geometries. It turns out that the covalent energy (i.e., exchange) of the halogen bond, X…N, itself drives the complex formation. When the complexes are compressed from their equilibrium to shorter X…N distance then the intra-atomic energy of N is in charge. When the REG analysis is restricted to electron correlation then the interatomic correlation energy between X and N again drives the complex formation, and the complex compression is best described by the destabilisation of the through-space correlation energy between N and the “outer” halogen.

2019 ◽  
Author(s):  
Mark A. Vincent ◽  
arnaldo silva ◽  
Paul Popelier

The calculation of Moller-Plesset electron correlation energy of a topological atom interacting with its environment is now sped up by about an order of magnitude. Secondly, the proposed algorithm generates much more accurate energies for modest quadrature grids. Thus it becomes now possible to provide the training of the force field FFLUX with electron correlation energies.


ChemPhysChem ◽  
2019 ◽  
Vol 20 (15) ◽  
pp. 1922-1930 ◽  
Author(s):  
Nasim Orangi ◽  
Kiamars Eskandari ◽  
Joseph C. R. Thacker ◽  
Paul L. A. Popelier

2019 ◽  
Author(s):  
Mark A. Vincent ◽  
arnaldo silva ◽  
Paul Popelier

The calculation of Moller-Plesset electron correlation energy of a topological atom interacting with its environment is now sped up by about an order of magnitude. Secondly, the proposed algorithm generates much more accurate energies for modest quadrature grids. Thus it becomes now possible to provide the training of the force field FFLUX with electron correlation energies.


ChemPhysChem ◽  
2019 ◽  
Vol 20 (15) ◽  
pp. 1906-1906
Author(s):  
Nasim Orangi ◽  
Kiamars Eskandari ◽  
Joseph C. R. Thacker ◽  
Paul L. A. Popelier

2020 ◽  
Vol 758 ◽  
pp. 137927
Author(s):  
Ibon Alkorta ◽  
José Elguero ◽  
Paul L.A. Popelier

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