Electronic and solvent reorganization in proton-coupled electron transfer captured by ultrafast X-rays
- Abdullah Kahraman
- Michael Sachs
- Soumen Ghosh
- Benjamin I. Poulter
- Estefanía Sucre-Rosales
- Elizabeth S. Ryland
- Douglas Garratt
- Sumana L. Raj
- Natalia Powers-Riggs
- Subhradip Kundu
- Christina Y. Hampton
- David J. Hoffman
- Giacomo Coslovich
- Georgi L. Dakovski
- Patrick L. Kramer
- Matthieu Chollet
- Roberto Alonso-Mori
- Tim B. van Driel
- Sang-Jun Lee
- Kristjan Kunnus
- Amy A. Cordones
- Robert W. Schoenlein
- Eric Vauthey
- Amity Andersen
- Niranjan Govind
- Christopher B. Larsen
- Elisa Biasin
2026-08-26
Proton-coupled electron transfer (PCET) is foundational to catalysis, bioenergetics, and energy conversion, yet directly observing the interplay between electronic redistribution, protonation, and solvent reorganization remains challenging. We combine femtosecond optical spectroscopy, ultrafast N K-edge X-ray absorption spectroscopy, and time-resolved X-ray solution scattering to capture the steps of a sequential PCET reaction in water with atomic-site specificity. Using a ruthenium polypyridyl model complex, we resolve the electron redistribution upon photoinduced metal-to-ligand charge transfer and subsequent ( ~ 460 ps) protonation at a ligand nitrogen, as well as the concomitant rearrangement of the first-solvation-shell. Combined with advanced electronic structure and molecular dynamics simulations, our measurements reveal a marked localization of the excited-state electron density at the protonated N site, together with a switch from N···HO to NH···O hydrogen-bonds. These results establish a multimodal X-ray framework for mechanistic insight into PCET and its control in catalysis, artificial photosynthesis, and biological energy flow.