Oscillator strengths of electronic excitations with response theory using phase including natural orbital functionals
van Meer, R., Gritsenko, O. V., Giesbertz, K., & Baerends, E. J. (2013). Oscillator strengths of electronic excitations with response theory using phase including natural orbital functionals. Journal of Chemical Physics, 138(9), Article 094114. https://doi.org/10.1063/1.4793740
Julkaistu sarjassa
Journal of Chemical PhysicsPäivämäärä
2013Tekijänoikeudet
© 2013 American Institute of Physics. Published in this repository with the kind permission of the publisher.
The key characteristics of electronic excitations of many-electron systems, the excitation energies
ωα and the oscillator strengths fα, can be obtained from linear response theory. In one-electron models
and within the adiabatic approximation, the zeros of the inverse response matrix, which occur
at the excitation energies, can be obtained from a simple diagonalization. Particular cases are the
eigenvalue equations of time-dependent density functional theory (TDDFT), time-dependent density
matrix functional theory, and the recently developed phase-including natural orbital (PINO) functional
theory. In this paper, an expression for the oscillator strengths fα of the electronic excitations
is derived within adiabatic response PINO theory. The fα are expressed through the eigenvectors
of the PINO inverse response matrix and the dipole integrals. They are calculated with the phaseincluding
natural orbital functional for two-electron systems adapted from the work of Lowdin ¨
and Shull on two-electron systems (the phase-including Löwdin-Shull functional). The PINO calculations
reproduce the reference fα values for all considered excitations and bond distances R of
the prototype molecules H2 and HeH+ very well (perfectly, if the correct choice of the phases in
the functional is made). Remarkably, the quality is still very good when the response matrices are
severely restricted to almost TDDFT size, i.e., involving in addition to the occupied-virtual orbital
pairs just (HOMO+1)-virtual pairs (R1) and possibly (HOMO+2)-virtual pairs (R2). The shape
of the curves fα(R) is rationalized with a decomposition analysis of the transition dipole moments.
...
Julkaisija
American Institute of PhysicsISSN Hae Julkaisufoorumista
0021-9606Julkaisu tutkimustietojärjestelmässä
https://converis.jyu.fi/converis/portal/detail/Publication/23871049
Metadata
Näytä kaikki kuvailutiedotKokoelmat
Samankaltainen aineisto
Näytetään aineistoja, joilla on samankaltainen nimeke tai asiasanat.
-
A Homoleptic Alkynyl‐Ligated [Au13Ag16L24]3‐ Cluster as a Catalytically Active Eight‐Electron Superatom
Li, Gao; Hakkinen, Hannu; Qin, Zhaoxian; Sharma, Sachil; Wan, Chong-qing; Xu, Wen-wu; Malola, Sami (Wiley, 2021)A brand new alkynylated cluster [Au 13 Ag 16 (C 10 H 6 NO) 24 ] 3- is prepared by NaBH 4 mediated reduction method. The AuAg clusters are confirmed by various sophisticated characterization techniques. It manifested the ... -
Approximate energy functionals for one-body reduced density matrix functional theory from many-body perturbation theory
Giesbertz, Klaas J. H.; Uimonen, Anna-Maija; van Leeuwen, Robert (Springer, 2018)We develop a systematic approach to construct energy functionals of the one-particle reduced density matrix (1RDM) for equilibrium systems at finite temperature. The starting point of our formulation is the grand potential ... -
Impact of the surface energy coefficient on the deformation properties of atomic nuclei as predicted by Skyrme energy density functionals
Ryssens, W.; Bender, M.; Bennaceur, Karim; Heenen, P.-H.; Meyer, J. (American Physical Society, 2019)Background: In the framework of nuclear energy density functional (EDF) methods, many nuclear phenomena are related to the deformation of intrinsic states. Their accurate modeling relies on the correct description of the ... -
Time-dependent density-functional theory for strongly interacting electrons
Cort Barrada, Luis; Karlsson, Daniel; Lani, Giovanna; van Leeuwen, Robert (American Physical Society, 2017)We consider an analytically solvable model of two interacting electrons that allows for the calculation of the exact exchange-correlation kernel of time-dependent density functional theory. This kernel, as well as ... -
Response calculations based on an independent particle system with the exact one- particle density matrix: Excitation energies
Giesbertz, Klaas; Gritsenko, O. V.; Baerends, E. J. (American Institute of Physics, 2012)Adiabatic response time-dependent density functional theory (TDDFT) suffers from the restriction to basically an occupied → virtual single excitation formulation. Adiabatic time-dependent density matrix functional theory ...
Ellei toisin mainittu, julkisesti saatavilla olevia JYX-metatietoja (poislukien tiivistelmät) saa vapaasti uudelleenkäyttää CC0-lisenssillä.