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Spin-adapted spin-flip-down time-dependent density functional theory

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Abstract

Molecular systems with orbital (near-)degeneracy at the Fermi level tend to adopt a high-spin ground state. In these systems, one often finds low-lying electronic excitations with a lower total spin that can be reached from the ground state by a spin-flip-down excitation. In this work, we present three spin-adapted spin-flip-down time-dependent density functional theory (SFD-TD-DFT) approaches to calculate the excitation energies for these types of electronic transitions. These SFD-TD-DFT methods are based on a restricted open-shell Kohn-Sham (ROKS) formulation within the Tamm-Dancoff approximation (TDA), giving rise to the ROKS-SFD-TDA family of methods. The three methods differ in the kernel, having different two-electron coupling elements in the resulting working equations. In agreement with earlier work, we find that a noncollinear description of the kernel is vital for producing a decent description of these excitations. In terms of obtaining excitations with a definite spin, we present two fully spin-adapted ROKS-SFD-TDA methods that either stem from configuration interaction with single excitations (SF-CIS) or from the already existing equation-of-motion ansatz (SF-TDA). It is shown that the spin-adaptation in SF-CIS and SF-TDA gives rise to artificial double counting of correlation effects by incorporating double excitations. When discarding this double counting, one ends up with an excited state that is partly spin-adapted (only in the open-to-open configurations). This method is called quasi-spin-adapted SF-TDA (Q-SF-TDA) and is shown to be a stable and efficient method that performs similarly to spin-unrestricted SFD-TD-DFT.

Original languageEnglish
Article number094111
Pages (from-to)2-22
Number of pages21
JournalThe Journal of chemical physics
Volume163
Issue number9
Early online date4 Sept 2025
DOIs
Publication statusPublished - 7 Sept 2025

Bibliographical note

Publisher Copyright:
© 2025 Author(s).

Funding

This work is part of “Suppressing Exciton Quenching in OLEDs: an Integrated Approach” (SEQUOIA), with Project No. 18975, of the research program “Open Technology” of the Netherlands Organization for Scientific Research (NWO). The project is jointly financed by NWO, Merck KGaA, and SCM B.V. C. S. Chibueze would like to acknowledge E. van Lenthe from SCM B.V. for insightful discussions.

Funders
Nederlandse Organisatie voor Wetenschappelijk Onderzoek
Merck KGaA

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