Intermolecular Coulombic decay in liquid water competes with proton transfer and non-adiabatic relaxation
Zhang P.; Trester J.; Dubský J.; Kolorenč P.; Slavíček P.; Wörner H. J.
Despite decades of research, our understanding of radiation damage in aqueous systems remains limited. The recent discovery of Intermolecular Coulombic Decay (ICD) following inner-valence ionization of liquid water raises interesting questions about its efficiency as a major source of low-energy electrons responsible for radiation damage. To investigate, we performed electron-electron coincidence measurements on liquid H2O and D2O using a monochromatized high-harmonic-generation light source, detecting ICD electrons in coincidence with photoelectrons from the 2a1 shell. We find that the ICD efficiency gamma is below unity in both liquids and that gamma(H2O)/gamma(D2O) = 0.86 +/- 0.03. Ab initio calculations reveal that ICD competes with proton transfer and non-adiabatic relaxation, which can close the ICD channel. A multi-scale stochastic model incorporating solvent effects reproduces these efficiencies. Our combined experimental and theoretical results suggest that the higher ICD efficiency in D2O arises from slower proton transfer and non-adiabatic transitions, highlighting the crucial role of nuclear motion in liquid-phase ICD and advancing the understanding of radiation damage.
| type: | article |
| journal: | Nature Communications |
| volume: | 16 |
| nr: | 1 |
| pages: | 6732 |
| year: | 2025 |
| link: |
https://doi.org/10.1038/s41467-025-61912-w
|
| grants: | Mnoha-elektronové rozpadové procesy ve víceatomových systémech; 2022 - 2024; hlavní řešitel: P. Kolorenč |