Adsorption of HCl on the Water Ice Surface Studied by X-ray Absorption Spectroscopy
- 11 January 2005
- journal article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry B
- Vol. 109 (4) , 1547-1553
- https://doi.org/10.1021/jp040518f
Abstract
The adsorption state of HCl at 20 and 90 K on crystalline water ice films deposited under ultrahigh vacuum at 150 K has been studied by X-ray absorption spectroscopy at the O1s K-edge and Cl2p L-edge. We show that HCl dissociates at temperatures as low as 20 K, in agreement with the prediction of a spontaneous ionization of HCl on ice. Comparison between the rate of saturation of the “dangling” hydrogen bonds and the chlorine uptake indicates that hydrogen bonding of HCl with the surface native water “dangling” groups only accounts for a small part of the ionization events (20% at 90 K). A further mechanism drives the rest of the dissociation/solvation process. We suggest that the weakening of the ice surface hydrogen-bond network after the initial HCl adsorption phase facilitates the generation of new dissociation/solvation sites, which increases the uptake capacity of ice. These results also emphasize the necessity to take into account not only a single dissociation event but its catalyzing effect on the subsequent events when modeling the uptake of hydrogen-bonding molecules on the ice surface.Keywords
This publication has 46 references indexed in Scilit:
- Stimulated Desorption of Cations from Pristine and Acidic Low-Temperature Water Ice SurfacesPhysical Review Letters, 2004
- Discrete stages in the solvation and ionization of hydrogen chloride adsorbed on ice particlesNature, 2002
- Diffusion Kinetics of HCl Hydrates in Ice Measured Using Infrared Laser Resonant Desorption Depth-ProfilingThe Journal of Physical Chemistry A, 2001
- Coupled QM/MM Molecular Dynamics Simulations of HCl Interacting with Ice Surfaces and Water Clusters − Evidence of Rapid IonizationThe Journal of Physical Chemistry A, 2000
- Structures and stability of hydrated clusters of hydrogen chloride, HCl(H2O)n, n=1–5The Journal of Chemical Physics, 1998
- Ab initio study of HCl and HF interaction with crystalline ice. I. Physical adsorptionThe Journal of Chemical Physics, 1998
- Adsorption of stratospherically important molecules on thin D2O ice films using reflection absorption infrared spectroscopyJournal of the Chemical Society, Faraday Transactions, 1992
- Antarctic Stratospheric Chemistry of Chlorine Nitrate, Hydrogen Chloride, and Ice: Release of Active ChlorineScience, 1987
- On the depletion of Antarctic ozoneNature, 1986
- Large losses of total ozone in Antarctica reveal seasonal ClOx/NOx interactionNature, 1985