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Michal Belina

Publications and source records attributed to Michal Belina.

2 recordsLinked to original sources

Proton transfer and hydronium formation in ionized water

Aqueous radiation chemistry emerges through ultrafast proton transfer and ion-radical formation with unexplored energy-redistribution dynamics steering the subsequent reactions. We performed a time-resolved disruptive-probing experiment on pure water dimer, (H$_2$O)$_2$, to disentangle the elementary post-ionization reactions. Through kinetic-energy-resolved ion imaging, we unraveled the dynamics in the (H$_2$O)$_2^+$ ground state: at low-energy ($\sim$0.05~eV) ultrafast proton transfer ($\sim$19~fs) is followed by H$_3$O$^+$+OH fragmentation ($\sim$360~fs). At higher energies, proton transfer becomes hindered ($\sim$60~fs) while the subsequent fragmentation becomes faster ($\sim$210~fs), eventually ($>0.15$~eV) merging into coupled dynamics ($\sim$100~fs). Additionally, we observed H$_2$O)$_2^+$ stabilization proceeding through a Zundel-like structure. These timescales and product energies reveal how ion-radical formation in ionized hydrogen-bonded networks shapes reactivity in aqueous dynamics.

physics.chem-ph

Specific versus Nonspecific Solvent Interactions of a Biomolecule in Water

Solvent interactions, particularly hydration, are vital in chemical and biochemical systems. Model systems unveil microscopic details of such interactions. We uncover a specific hydrogen-bonding motif of the biomolecular building block indole (C$_8$H$_7$N), tryptophan's chromophore, in water: a strong localized $\text{N-H}\cdots\text{OH}_2$ hydrogen bond, alongside unstructured solvent interactions. This insight is revealed from a combined experimental and theoretical analysis of indole's electronic structure in aqueous solution. We have recorded the complete X-ray photoemission and Auger spectrum of aqueous-phase indole, quantitatively explaining all peaks through \emph{ab initio} modeling. The efficient and accurate technique for modeling valence and core photoemission spectra involves the maximum-overlap method and the non-equilibrium polarizable-continuum model. A two-hole electron-population analysis quantitatively describes the Auger spectra. Core-electron binding energies for nitrogen and carbon highlight the specific interaction with a hydrogen-bonded water molecule at the N-H group and otherwise nonspecific solvent interactions.

physics.chem-ph