Comparison of approximate intermolecular potentials for ab initio fragment calculations on medium sized N-heterocycles

Author(s):  
Bónis Barcza ◽  
Ádám B. Szirmai ◽  
Katalin J. Szántó ◽  
Attila Tajti ◽  
Péter G. Szalay

The ground state intermolecular potential of bimolecular complexes of N-heterocycles is analysed for the impact of different terms of the interaction energy as provided by various, conceptually different theories. Novel combinations with several formulations of the electrostatic, Pauli repulsion, dispersion and other contributions are tested for a good performance at both short- and long-distance sides of the potential energy surface for various alignments of the pyrrole dimer as well as the cytosine-uracil complex. The integration of a DFT/CC density embedding scheme and dispersion terms from the effective fragment potential (EFP) method is found to provide very good agreement with the reference CCSD(T) potential overall, but a QM/MM approach using CHELPG atomic point charges for the electrostatic interaction augmented by EFP dispersion and Pauli repulsion contributions comes also close. Both of these schemes has the advantage of not relying on predefined force fields, rather the interaction parameters can be obtained for the system under study, therefore excellent candidates for ab initio modeling.

2021 ◽  
Author(s):  
Bónis Barcza ◽  
Ádám B. Szirmai ◽  
Katalin J. Szántó ◽  
Attila Tajti ◽  
Péter G. Szalay

The ground state intermolecular potential of bimolecular complexes of N-heterocycles is analysed for the impact of different terms of the interaction energy as provided by various, conceptually different theories. Novel combinations with several formulations of the electrostatic, Pauli repulsion, dispersion and other contributions are tested for a good performance at both short- and long-distance sides of the potential energy surface for various alignments of the pyrrole dimer as well as the cytosine-uracil complex. The integration of a DFT/CC density embedding scheme and dispersion terms from the effective fragment potential (EFP) method is found to provide very good agreement with the reference CCSD(T) potential overall, but a QM/MM approach using CHELPG atomic point charges for the electrostatic interaction augmented by EFP dispersion and Pauli repulsion contributions comes also close. Both of these schemes has the advantage of not relying on predefined force fields, rather the interaction parameters can be obtained for the system under study, therefore excellent candidates for ab initio modeling.


2012 ◽  
Vol 137 (7) ◽  
pp. 074305 ◽  
Author(s):  
Hubert Cybulski ◽  
Berta Fernández ◽  
Christian Henriksen ◽  
Peter M. Felker

2007 ◽  
Vol 21 (13n14) ◽  
pp. 2204-2214 ◽  
Author(s):  
BEATE PAULUS

The method of increments is a wavefunction-based ab initio correlation method for solids, which explicitly calculates the many-body wavefunction of the system. After a Hartree-Fock treatment of the infinite system the correlation energy of the solid is expanded in terms of localised orbitals or of a group of localised orbitals. The method of increments has been applied to a great variety of materials with a band gap, but in this paper the extension to metals is described. The application to solid mercury is presented, where we achieve very good agreement of the calculated ground-state properties with the experimental data.


2011 ◽  
Vol 135 (4) ◽  
pp. 044308 ◽  
Author(s):  
Antonio G. S. de Oliveira-Filho ◽  
Yuri A. Aoto ◽  
Fernando R. Ornellas

2014 ◽  
Vol 140 (23) ◽  
pp. 234301 ◽  
Author(s):  
Chunfang Zhang ◽  
Mingkai Fu ◽  
Zhitao Shen ◽  
Haitao Ma ◽  
Wensheng Bian

1999 ◽  
Vol 111 (1) ◽  
pp. 198-204 ◽  
Author(s):  
Henrik Koch ◽  
Berta Fernández ◽  
Jan Makarewicz

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