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Updated: Jun 9, 2026

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Published on: June 9, 2023
Interplay between electronic and phononic energy dissipation channels in the adsorption of CO on Cu(110)
Carmen A Tachino1,2, Federico J Gonzalez1, Alberto S Muzas3
1Grupo de Fisicoquímica en Interfases y Nanoestructuras, Instituto de Física Rosario (IFIR), CONICET-UNR, Bv. 27 de Febrero 210 bis, S2000EKF Rosario, Argentina.
Abstract:
In this work, we investigate the relative importance of electronic and phononic energy dissipation during the molecular adsorption of CO on Cu(110). Initial sticking probabilities as a function of impact energy for CO impinging at normal incidence at a surface temperature of 90 K were computed using classical trajectory simulations. To this aim, we use a full-dimensional potential energy surface constructed using an atomistic neural network trained on density functional theory data obtained with the nonlocal vdW-DF2 exchange-correlation functional. Two models are compared: one allowing only energy transfer and dissipation from the molecule to lattice vibrations, and the other also incorporating the effect of molecular energy loss due to the excitation of electron-hole pairs, modeled within the local-density friction approximation. Our results reveal, first, that the molecule mainly transfers energy to lattice vibrations, and this channel determines the adsorption probabilities, with electronic friction playing a minor role. Second, once the molecule is trapped near the surface (where electronic density is higher), electron-hole pair excitations accelerate energy dissipation, significantly promoting CO thermalization. Still, the faster energy dissipation when electron-hole pair excitations are accounted for accelerates the accommodation of the adsorbed molecules in the chemisorption well but does not significantly alter their lateral displacements over the surface.
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