Machine learning photodynamics decode multiple singlet fission channels in pentacene crystal

Z Zhendong Li F Federico J. Hernández (Department of Chemistry, Queen Mary University of London. Mile End Road, London. E1 4NS, U.K.) C Christian Salguero S Steven A. Lopez (Department of Chemistry and Chemical Biology) R Rachel Crespo-Otero (Department of Chemistry) J Jingbai Li

Abstract

Abstract Crystalline pentacene is a model solid-state light-harvesting material because its quantum efficiencies exceed 100% via ultrafast singlet fission. The singlet fission mechanism in pentacene crystals is disputed due to insufficient electronic information in time-resolved experiments and intractable quantum mechanical calculations for simulating realistic crystal dynamics. Here we combine a multiscale multiconfigurational approach and machine learning photodynamics to understand competing singlet fission mechanisms in crystalline pentacene. Our simulations reveal coexisting charge-transfer-mediated and coherent mechanisms via the competing channels in the herringbone and parallel dimers. The predicted singlet fission time constants (61 and 33 fs) are in excellent agreement with experiments (78 and 35 fs). The trajectories highlight the essential role of intermolecular stretching between monomers in generating the multi-exciton state and explain the anisotropic phenomenon. The machine-learning-photodynamics resolved the elusive interplay between electronic structure and vibrational relations, enabling fully atomistic excited-state dynamics with multiconfigurational quantum mechanical quality for crystalline pentacene.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 30, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (6)

Z

Zhendong Li

F

Federico J. Hernández

Department of Chemistry, Queen Mary University of London. Mile End Road, London. E1 4NS, U.K.

C

Christian Salguero

S

Steven A. Lopez

Department of Chemistry and Chemical Biology

R

Rachel Crespo-Otero

Department of Chemistry

J

Jingbai Li