New light on the excited states of xanthophyll carotenoids

Xantophylls are oxygenated derivatives of carotenes, which play essential roles in photosynthetic light harvesting and photoprotection. Their unique and tunable photophysical properties arise from their complex electronic-state manifold, but the accurate description of their excited states at a feasible computational cost remains challenging. 

In this work published on JCTC, we compared three cost-effective methods, DFT/MRCI, FOMO–CI, and MRSF-TDDFT, in the descriptions of the excited states for a representative set of xantophylls. To overcome the complexity of the excited-state manifold and consistently characterize electronic states across methods, we proposed a multiple-property-based diabatization (MPD) strategy. We sought to provide a strategy for understanding xanthophyll photophysics with cost-effective methods.

We found out, somewhat surprisingly, that these methods provide a very similar picture of the excited state manifold along the excited-state relaxation coordinates, although the MRSF results are strongly dependent on the functional. Overall, our work supports the use of cost-effective methods to describe the excited-state dynamics of xanthophylls.

Arcidiacono, A., Martini, V., Cupellini, L. & Pedraza-González, L.
Modeling Xanthophyll Excited States via Cost-Effective Quantum Chemistry methods and Property-Based Diabatization
J. Chem. Theory Comput. (2026) https://pubs.acs.org/doi/10.1021/acs.jctc.6c00637

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