Deciphering Charge Transfer and Hydrogen Bonding Characteristics from Liquid Water XAS Spectra
Creators
Abstract
X-ray absorption spectroscopy (XAS) provides critical insights into the molecular and electronic structures of complex condensed-phase systems. For example, the XAS spectrum of liquid water depends on the complex three-dimensional arrangements of water molecules and their effects on the core-to-valence electronic transitions. Consequently, a wealth of molecular and electronic information is encoded in the complex spectral patterns. To decode these structure-electronic property relationships, we simulated the XAS spectra of bulk water by combining advanced molecular dynamics (MD) simulations coupled with multiconfigurational wave function methods. Using three advanced MD approaches─ab initio MD (AIMD), RexPoN, and MB-pol─we sampled the local solvation environments and hydrogen-bond (HB) networks, which were then used to predict the XAS spectra. Based on the theory-experiment comparisons of pair distribution functions and XAS spectra, we identified the MD method that most reliably predicts the local water structure. We further revealed that the charge-transfer (CT) character observed across the entire spectral range is strongly correlated to the hydrogen-bond (HB) network. Specifically, the extent of CT and the associated excitation energy are significantly influenced by the HB structure. These findings highlight the limitations of a purely local excitation model for interpreting bulk water XAS spectra. Instead, accurate sampling of HB structures and high-level wave function theory with dynamic correlation are essential for reliable spectral interpretation. This approach provides new insights into the relationship between the electronic structure and the molecular organization of water.
Copyright and License
© 2025 American Chemical Society.
Acknowledgement
We thank the IBS Research Solution Center (RSC) for providing computational resources.
Funding
This work was supported by the National Research Foundation of Korea (NRF) and grants from the Korean Government (MSIT) (RS-2024-00405261 and RS-2024-00435493), and also supported by the Institute for Basic Science (IBS-R033) and InnoCORE program of the Ministry of Science and ICT (1.250022.01). WAG was supported by the Liquid Sunlight Alliance, which is supported by the US Department of Energy, Office of Science, Office of Basic Energy Sciences, Fuels from Sunlight Hub under award no. DE-SC0021266.
Supplemental Material
Comparison of XAS spectra computed at the CASSCF and NEVPT2 levels and water clusters extracted from Ice Ih; tables comparing the results for the full trajectory and 1000 sampled snapshots, comparison of the second peak of radial distribution functions from three different MD methods, XAS simulation of gas-phase water in comparison with experiment, and calculated excitation energies of ND:DA and DD:NA water clusters (PDF)
Files
ct5c01156_si_001.pdf
Additional details
Identifiers
- PMID
- 41186442
Funding
- National Research Foundation of Korea
- RS-2024-00405261
- National Research Foundation of Korea
- RS-2024-00435493
- Institute for Basic Science
- IBS-R033
- Ministry of Science and ICT
- 1.250022.01
- United States Department of Energy
- DE-SC0021266
Dates
- Submitted
-
2025-07-12
- Accepted
-
2025-10-24
- Available
-
2025-11-04Published online
Caltech Custom Metadata
- Caltech groups
- Division of Chemistry and Chemical Engineering (CCE) , Liquid Sunlight Alliance , Materials and Process Simulation Center
- Publication Status
- Published