Unveiling the role of dark states in dynamic control of azopyrrole photoisomerization by light-matter interaction
Journal article, 2025

Strong light-matter interactions demonstrated considerable potential to control photochemical reactions. Here, we coupled a single cavity mode to the electronic S0-S1 transition of azopyrrole E and Z-isomers. This allows us to observe the impact on the photoisomerization process “on-the-go”, i.e., capturing a sharp transition in the kinetics when moving from strong to weak coupling. Pumping either at the upper polaritonic state or the uncoupled population shows an acceleration of the photoisomerization process (strong to weak), whereas the opposite is observed when exciting the lower polaritonic state. Excellent correlation between spectral overlap and rate suggests that changes in photochemistry are mediated by relaxation via the dark state manifold. Remaining in the ultra-strong coupling regime affects the reaction kinetics, but without sharp transitions. Our experimental and theoretical findings underline that dynamic transitions between coupling domains might pave the way to a better understanding of how strong coupling modifies photoisomerization reactions. (Figure presented.)

Author

Pallavi Garg

Indian Institute of Science

Jaibir Singh

Indian Institute of Science

Ankit Kumar Gaur

Indian Institute of Science

Sugumar Venkataramani

Indian Institute of Science

Christian Schäfer

Chalmers, Physics, Condensed Matter and Materials Theory

Jino George

Indian Institute of Science

Communications Chemistry

23993669 (eISSN)

Vol. 8 1 192

Subject Categories (SSIF 2025)

Theoretical Chemistry

Atom and Molecular Physics and Optics

DOI

10.1038/s42004-025-01588-x

More information

Latest update

7/17/2025