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Journal article

Tracking structural solvent reorganization and recombination dynamics following e− photoabstraction from aqueous I− with femtosecond x-ray spectroscopy and scattering

From

Department of Physics, Technical University of Denmark1

Technical University of Denmark2

The Hamburg Centre for Ultrafast Imaging3

European XFEL4

Neutrons and X-rays for Materials Physics, Department of Physics, Technical University of Denmark5

Department of Chemistry, Technical University of Denmark6

Physical and Biophysical Chemistry, Department of Chemistry, Technical University of Denmark7

Wigner Research Centre for Physics8

Swiss Federal Institute of Technology Lausanne9

SLAC National Accelerator Laboratory10

...and 0 more

We present a sub-picosecond resolved investigation of the structural solvent reorganization and geminate recombination dynamics following 400 nm two-photon excitation and photodetachment of a valence p electron from the aqueous atomic solute, I−(aq). The measurements utilized time-resolved X-ray Absorption Near Edge Structure (TR-XANES) spectroscopy and X-ray Solution Scattering (TR-XSS) at the Linac Coherent Light Source x-ray free electron laser in a laser pump/x-ray probe experiment.

The XANES measurements around the L1-edge of the generated nascent iodine atoms (I0) yield an average electron ejection distance from the iodine parent of 7.4 ± 1.5 Å with an excitation yield of about 1/3 of the 0.1M NaI aqueous solution. The kinetic traces of the XANES measurement are in agreement with a purely diffusion-driven geminate iodine–electron recombination model without the need for a long-lived (I0:e−) contact pair.

Nonequilibrium classical molecular dynamics simulations indicate a delayed response of the caging H2O solvent shell and this is supported by the structural analysis of the XSS data: We identify a two-step process exhibiting a 0.1 ps delayed solvent shell reorganization time within the tight H-bond network and a 0.3 ps time constant for the mean iodine–oxygen distance changes.

The results indicate that most of the reorganization can be explained classically by a transition from a hydrophilic cavity with a well-ordered first solvation shell (hydrogens pointing toward I−) to an expanded cavity around I0 with a more random orientation of the H2O molecules in a broadened first solvation shell.

Language: English
Publisher: AIP Publishing LLC
Year: 2022
Pages: 224201
ISSN: 10897690 and 00219606
Types: Journal article
DOI: 10.1063/5.0107224
ORCIDs: Vester, Peter , 0000-0001-8481-2249 , Biasin, Elisa , 0000-0002-6626-7301 , Dohn, Asmus O. , 0000-0003-4070-3168 , 0000-0001-7824-9197 , Henriksen, Niels E. , 0000-0002-4399-1890 , 0000-0002-4294-9447 , Pápai, Mátyás , 0000-0002-3095-6551 , 0000-0001-5811-7525 , 0000-0001-5639-166X , Nielsen, Martin M. , Møller, Klaus B. , Haldrup, Kristoffer , 0000-0001-9694-5495 and Kjær, Kasper S.

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