Abstract
Molecules characterized by an inverted singlet-triplet gap ( ΔEST<0$$ \Delta {E}_{\mathrm{ST}}<0 $$ ) hold potential for optoelectronic applications. Electronic correlation and environmental polarization are key factors influencing negative ΔEST$$ \Delta {E}_{\mathrm{ST}} $$ , and the latter is gaining attention for its possible role in "mimicking" correlation contributions to yield negative ΔEST$$ \Delta {E}_{\mathrm{ST}} $$ . However, a comprehensive study of solvation effects on both structures and energy gaps is still lacking. In this work, we evaluate computational strategies for calculating ΔEST<0$$ \Delta {E}_{\mathrm{ST}}<0 $$ gaps, incorporating electronic correlation and solvent polarization in molecules exhibiting singlet-triplet inversion. Using RMS-CASPT2 as a benchmark, we demonstrate that double-hybrid density functionals and mixed-reference spin-flip TD-DFT (MRSF-TD-DFT) can partially recover electronic correlation. Furthermore, we investigate solvation effects on both singlet and triplet excited states, highlighting the limitations of linear-response schemes in continuum solvation models. We finally develop a protocol combining electronic correlation and state-specific solvent polarization using double-hybrid functionals and the Vertical Excitation Model (VEM), leveraging its Lagrangian implementation to compute structures and adiabatic energies. Applying our B2PLYP/VEM(UD) protocol to larger systems with experimentally observed negative ΔEST$$ \Delta {E}_{\mathrm{ST}} $$ gaps, we quantitatively reproduce experimental emissive and non-radiative transition rates.
| Original language | English |
|---|---|
| Number of pages | 14 |
| Journal | Journal of Computational Chemistry |
| Volume | 46 |
| Issue number | 30 |
| DOIs | |
| Publication status | Published - 2025 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- TDDFT
- double‐hybrid density functional theory
- electronic correlation
- environment polarization
- excited states
- multireference electronic structure
- singlet–triplet inversion
- state specific solvation
- thermally activated delayed fluorescence (TADF)
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