English

Dark-State-Mediated Efficient Energy Trapping in a Model GFP Chromophore

Chemical Physics 2026-05-05 v1

Abstract

The functional properties of photoactive proteins are governed by the interplay between bright and dark excited states. While the bright states are well-studied, the dark states, which are fundamental to photostability and light harvesting, are notoriously difficult to characterize. Here, we report the direct observation and full characterization of an optically dark, low-lying singlet excited state in the isolated anion of the meta green fluorescent protein (GFP) chromophore. Using a combination of ultrafast time-resolved action-absorption and photoelectron spectroscopy, we have captured the formation of this state in 100 fs and measured its remarkably long lifetime of 94 ps. We unambiguously assign its charge-transfer character and reveal the precise trapping mechanism through high-level ab initio calculations. Our findings uncover a photoprotective mechanism in biomolecular anions where ultrafast internal conversion quenches electron emission, stabilizing long-lived electronic excitation even when the energy exceeds the electron detachment threshold.

Keywords

Cite

@article{arxiv.2512.09637,
  title  = {Dark-State-Mediated Efficient Energy Trapping in a Model GFP Chromophore},
  author = {Elisabeth Gruber and Lars H. Andersen and Laurence H. Stanley and Jan R. R. Verlet and Ivan S. Avdonin and Anastasia V. Bochenkova},
  journal= {arXiv preprint arXiv:2512.09637},
  year   = {2026}
}

Comments

28 pages, 9 figures

R2 v1 2026-07-01T08:18:49.889Z