4.7 Article

Frozen Density Embedding with External Orthogonality in De localized Covalent Systems

Journal

JOURNAL OF CHEMICAL THEORY AND COMPUTATION
Volume 11, Issue 7, Pages 3080-3088

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jctc.5b00293

Keywords

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Funding

  1. NSF [CHE-1362825]
  2. Research Computing and Cyberinfrastructure, a unit of Information Technology Services at Penn State
  3. Division Of Chemistry
  4. Direct For Mathematical & Physical Scien [1362825] Funding Source: National Science Foundation

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Frozen density embedding (FDE) has become a popular subsystem density functional theory (DFT) method for systems with weakly overlapping Charge densities. The failure of this method for strongly interacting and covalent systems is due to the approximate kinetic energy density functional (KEDF), although the need for approximate KEDFs may be eliminated if each subsystem's Kohn Sham (KS) orbitals are orthogonal to the other, termed external orthogonality (EO). We present an implementation of EO into the FDE framework within the Amsterdam denSity fiinctionaI program package, using the level-shift projection Ioperator method. We generalize this method to remove the need for orbital localization schemes and to include multiple subsystems, and we show that the exact KS-DFT energies and densities may be reproduced through, iterative freeze-and-thaw cycles for a number of systems, including a charge delocalized benzene molecule starting from atomic subsystems. Finally, we examine the possibility of a truncated basis for systems with and without charge delocalization, and found that subsystems require a basis that allows them to correctly describe the supermolecular delocalized orbitals.

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