Abstract
Molecular beam scattering experiments are carried out to study collisions between Ne atoms and the surface of a cold salty water flat jet. Translational energy distributions are collected as a function of scattering angle using a rotatable mass spectrometer. Impulsive scattering and thermal desorption contribute to the overall scattering distributions, but impulsive scattering dominates at all three incidence angles explored. Highly super-specular scattering is observed in the impulsive scattering channel that is attributed to anisotropic momentum transfer to the liquid surface. The thermal desorption channel exhibits a cosθ angular distribution. Compared to Ne scattering from dodecane, fractional energy loss in the impulsive scattering channel is much larger across a wide range of deflection angles. A soft-sphere model is applied to investigate the kinematics of energy transfer between the scatterer and liquid surface. Fitting to this model yields an effective surface mass of 223 +100/−60 amu and internal excitation of 11.6 ± 1.6 kJ mol−1, both of which are considerably larger than for Ne/dodecane. It thus appears that energy transfer to cold salty water is more efficient than to a dodecane liquid surface, a result attributed to the extensive hydrogen-bonded network of liquid water and roughness of the liquid surface.
Supplementary materials
Title
Supporting Information
Description
Supporting information and figures for the manuscript. S1) Supplementary TOF profiles; S2) Zoomed-in scattering angular distributions; S3) Effective surface mass error analysis; S4) Internal excitation error analysis
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