Interaction of singly and multiply charged ions with a lithium-fluoride surface
Description
Charge transfer between slow ions and an ionic crystal surface still poses a considerable challenge to theory due to the intrinsic many-body character of the system. For the neutralization of multiply charged ions in front of metal surfaces, the Classical Over the Barrier (COB) model is a widely used tool. We present an extension of this model to ionic crystal surfaces where the localization of valence electrons at the anion sites and the lack of cylindrical symmetry of the ion-surface system impede a simple analytical estimate of electron transfer rates. We use a classical trajectory Monte Carlo approach to calculate electron transfer rates for different charge states of the projectile ion. With these rates we perform a Monte Carlo simulation of the neutralization of slow Ne10+ ions in vertical incidence on an LiF surface. Capture of one or several electrons may lead to a local positive charge up of the surface. The projectile dynamics depends on the balance between the repulsion due to this charge and the attraction due to the self-image potential. In a simulation that treats electronic and nuclear dynamics simultaneously, we show that the image attraction dominates over the repulsive force. Backscattering of very slow multiply charged projectiles high above the surface without touching it ('trampoline effect') does not take place. Instead, the projectile ion penetrates into the surface or is reflected due to close binary collision with surface ions. The case of a singly charged ion in front of an LiF surface is within the reach of ab-initio calculations. We use a multi-configuration self consistent field (MCSCF) and a multi-reference configuration interaction (MR-CI) method to calculate adiabatic potential energy curves for a system consisting of the projectile ion and an embedded cluster of surface ions. With increasing cluster size, the energy levels of the embedded cluster converge towards the band structure of the infinitely extended solid. Due to polarization and correlation effects, the use of a configuration interaction method turns out to be crucial for a proper description of electron transfer from the valence band to the projectile. We demonstrate charge transfer mechanisms for different ion species. Our calculations support the results of a recent experiment on the energy threshold for potential sputtering of LiF by singly charged ions. (author)
Availability note (English)
Available from Technische Univ. Wien Bibliothek, Wiedner Hauptstrasse 6-8, 1040 Vienna (AT)Additional details
Publishing Information
- Imprint Pagination
- 122 p.
INIS
- Country of Publication
- Austria
- Country of Input or Organization
- Austria
- INIS RN
- 34078360
- Subject category
- S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
- Resource subtype / Literary indicator
- Thesis, Non-conventional Literature
- Descriptors DEI
- CHARGE EXCHANGE; ION BEAMS; IONIC CRYSTALS; LITHIUM FLUORIDES; MONTE CARLO METHOD; MULTICHARGED IONS; NEON IONS; POTENTIALS; SPUTTERING; SURFACES
- Descriptors DEC
- ALKALI METAL COMPOUNDS; BEAMS; CALCULATION METHODS; CHARGED PARTICLES; CRYSTALS; FLUORIDES; FLUORINE COMPOUNDS; HALIDES; HALOGEN COMPOUNDS; IONS; LITHIUM COMPOUNDS; LITHIUM HALIDES
Optional Information
- Notes
- Reference number: 598.192 II