3-DIMENSIONAL THEORY OF ELECTRON-STIMULATED DESORPTION FROM PHYSISORBED LAYERS - ANGLE-RESOLVED KINETIC-ENERGY DISTRIBUTIONS OF DESORPTION PRODUCTS FOR THE ANTONIEWICZ AND THE WAVE-PACKET-SQUEEZING MODELS
Zw. Gortel et R. Teshima, 3-DIMENSIONAL THEORY OF ELECTRON-STIMULATED DESORPTION FROM PHYSISORBED LAYERS - ANGLE-RESOLVED KINETIC-ENERGY DISTRIBUTIONS OF DESORPTION PRODUCTS FOR THE ANTONIEWICZ AND THE WAVE-PACKET-SQUEEZING MODELS, Physical review. B, Condensed matter, 47(15), 1993, pp. 9825-9835
Three-dimensional quantum theory of electron-stimulated desorption of
neutral particles from physisorbed layers on metals is formulated. The
theory accounts for the effects associated with the time evolution in
all spatial directions of the adsorbed particle wave function in the
electronically excited metastable state of the system. The one-dimensi
onal Antoniewicz model and the recently proposed wave-packet-squeezing
(WPS) model emerge as particular limiting cases. A simple expression
for the angle-resolved kinetic-energy distribution of desorbing neutra
l particles is derived in the approximation of the position-independen
t electronic deexcitation rate. The distributions for the three-dimens
ional versions of the Antoniewicz and WPS scenarios of desorption are
numerically compared and their dependence on the details of the wave-p
acket time evolution in the directions parallel to the surface plane (
i.e., in the lateral directions) are studied. The system parameters us
ed are those for N2O on Ru(001) for which the best agreement with the
experimental data on the kinetic-energy distributions for particles de
sorbing in the direction of the surface normal was obtained in the pas
t. The angular dependence of the desorption yields are very similar in
both desorption scenarios and, generally, the particles desorb within
a wider polar cone for systems with surface potentials narrower in th
e lateral directions. Preferential desorption in polar directions away
from the surface normal may occur for systems in which the lateral ex
tent of the surface potential gets strongly modified by the initial el
ectronic excitation which triggers desorption. A multipeak structure o
f the kinetic-energy distribution of the products desorbing in the dir
ection of the surface normal is possible for the Antoniewicz scenario
(but not for the WPS) as a result of fast evolution of the wave functi
on in the lateral direction. Similar effects are expected to affect th
e distributions for chemisorbed species desorbing according to the Men
zel-Gomer-Redhead scenario.