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Emil Proynov

Publications and source records attributed to Emil Proynov.

3 recordsLinked to original sources

Analyzing cases of significant nondynamic correlation with DFT using the Atomic Populations of Effectively Localized Electrons

Multireference effects are associated with degeneracies and near-degeneracies of the ground state and are critical to a variety of systems. Most approximate functionals of density functional theory (DFT) fail to properly describe these effects. A number of diagnostics have been proposed that allow to estimate the reliability of a given single-reference solution in this respect. Some of these diagnostics however lack size-consistency, while remaining computationally expensive. In this work we use the DFT method of determining atomic populations of effectively localized electrons (APELE) as a novel diagnostic in this vein. It is compared with several existing diagnostics of nondynamic correlation on select exemplary systems. We show that the APELE method is on average in good agreement with the existing diagnostics, while being both size-consistent and less costly. It becomes particularly informative in cases involving bond stretching or bond breaking. The APELE method is applied next to organic diradicals like the bis-acridine dimer and the p-quinodimethane molecule which possess unusually high nonlinear optical response, and to the reaction of ethylene addition to Ni dithiolene, where our results shed some more light on how the oxidation state of the Ni center may change when going from the initial reactant to the product.

quant-ph

Reducing charge delocalization error of density functional theory

The charge delocalization error, besides nondynamic correlation, has been a major challenge to density functional theory. Contemporary functionals undershoot the dissociation of symmetric charged dimers A2+, a simple but stringent test, predict a spurious barrier and improperly delocalize charges for charged molecular clusters. We extend a functional designed for nondynamic correlation to treat the charge delocalization error by modifying the nondynamic correlation for parallel spins. The modified functional eliminates those problems and reduces the multielectron self-interaction error. Furthermore, its results are the closest to those of CCSD(T) in the whole range of the dissociation compared with contemporary functionals. It correctly localizes the net positive charge in (CH4)n+ clusters and predicts a nearly constant ionization potential as a result. Testing of the SIE4x4 set shows that the new functional outperforms a wide variety of functionals assessed for this set in the literature. Overall, we show the feasibility of treating charge delocalization together with nondynamic correlation.

physics.chem-ph

Density Functional Model for Nondynamic and Strong Correlation

A single-term density functional model for nondynamic and strong correlation is presented, based on single-determinant Kohn-Sham density functional theory. It is derived from modeling the adiabatic connection and contains only two nonlinear empirical parameters. Preliminary tests show that the model recovers majority of nondynamic correlation during a molecular dissociation and at the same time performs reasonably for atomization energies. It demonstrates the feasibility of developing DFT functionals for nondynamic and strong correlation within the single-determinant KS scheme.

physics.chem-ph