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  Charge transfer excitations from particle-particle random phase approximation—Opportunities and challenges arising from two-electron deficient systems

Yang, Y., Dominguez, A., Zhang, D., Lutsker, V., Niehaus, T. A., Frauenheim, T., et al. (2017). Charge transfer excitations from particle-particle random phase approximation—Opportunities and challenges arising from two-electron deficient systems. The Journal of Chemical Physics, 146(12): 124104. doi:10.1063/1.4977928.

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https://dx.doi.org/10.1063/1.4977928 (Publisher version)
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 Creators:
Yang, Y.1, Author
Dominguez, A.2, Author           
Zhang, D.1, Author
Lutsker, V.3, Author
Niehaus, T. A.4, Author
Frauenheim, T.5, Author
Yang, W.1, 6, 7, Author
Affiliations:
1Department of Chemistry, Duke University, Durham, ou_persistent22              
2Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_2266715              
3Department of Theoretical Physics, University of Regensburg, ou_persistent22              
4Université Lyon, Université Claude Bernard Lyon 1, CNRS, Institut Lumière Matière, ou_persistent22              
5Bremen Center for Computational Materials Science, Universität Bremen, ou_persistent22              
6Department of Physics, Duke University, Durham, ou_persistent22              
7Key Laboratory of Theoretical Chemistry of Environment, Ministry of Education, School of Chemistry and Environment, South China Normal University, ou_persistent22              

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 Abstract: The particle-particle random phase approximation (pp-RPA) is a promising method for studying charge transfer (CT) excitations. Through a detailed analysis on two-electron deficient systems, we show that the pp-RPA is always able to recover the long-distance asymptotic −1/R trend for CT excitations as a result of the concerted effect between orbital energies and the pp-RPA kernel. We also provide quantitative results for systems with relatively short donor-acceptor distances. With conventional hybrid or range-separated functionals, the pp-RPA performs much better than time-dependent density functional theory (TDDFT), although it still gives underestimated results which are not as good as TDDFT with system-dependent tuned functionals. For pp-RPA, there remain three great challenges in dealing with CT excitations. First, the delocalized frontier orbitals in strongly correlated systems often lead to difficulty with self-consistent field convergence as well as an incorrect picture with about half an electron transferred. Second, the commonly used density functionals often underestimate the energy gap between the highest occupied molecular orbital and the lowest unoccupied molecular orbital (LUMO) for the two-electron deficient species, resulting in systems with delocalized orbitals. Third, the performance of pp-RPA greatly depends on the energy difference between the LUMO and a higher virtual orbital. However, the meaning of the orbital energies for higher virtual orbitals is still not clear. We also discuss the performance of an approximate pp-RPA scheme that uses density functional tight binding (pp-DFTB) as reference and demonstrate that the aforementioned challenges can be overcome by adopting suitable range-separated hybrid functionals. The pp-RPA and pp-DFTB are thus promising general approaches for describing charge transfer excitations.

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Language(s): eng - English
 Dates: 2016-12-062017-02-212017-03-222017-03-28
 Publication Status: Issued
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 Rev. Type: Peer
 Identifiers: DOI: 10.1063/1.4977928
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Project name : Y.Y. and W.Y. appreciate the support from National Sci- ence Foundation (Grant No. CHE-1362927). D.Z. appreci- ates the support as part of the Center for the Computational Design of Functional Layered Materials, an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science, Basic Energy Sciences under Award No. DE-SC0012575.
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Title: The Journal of Chemical Physics
  Other : J. Chem. Phys.
Source Genre: Journal
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Publ. Info: Woodbury, N.Y. : American Institute of Physics
Pages: - Volume / Issue: 146 (12) Sequence Number: 124104 Start / End Page: - Identifier: ISSN: 0021-9606
CoNE: https://pure.mpg.de/cone/journals/resource/954922836226