Multiple excitation of Fuchs-Kliewer phonons by Ne super(+) ions back-scattered by the LiF(100) surface at grazing incidence

An analytic model is developed to describe the inelastic processes occurring when keV Ne super(+) ions are scattered at grazing incidence by the (100) surface of LiF. The large energy losses (up to 30 eV) of the reflected Ne super(+) particles reported by Borisov et al (1999 Phys. Rev. Lett. 83 5378...

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Veröffentlicht in:Journal of physics. Condensed matter 2013-09, Vol.25 (35), p.1-11
Hauptverfasser: Lucas, A A, Sunjic, M, Benedek, G
Format: Artikel
Sprache:eng
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Zusammenfassung:An analytic model is developed to describe the inelastic processes occurring when keV Ne super(+) ions are scattered at grazing incidence by the (100) surface of LiF. The large energy losses (up to 30 eV) of the reflected Ne super(+) particles reported by Borisov et al (1999 Phys. Rev. Lett. 83 5378) are shown to arise specifically from the long-range coupling between the projectiles and the so-called Fuchs-Kliewer (FK) optical phonons of LiF whose fields extend far outside the surface. The strength of the coupling is estimated, allowing one to compute the average number of excited FK phonon quanta (h omega sub(s) = 0.071 eV) and hence the mean energy losses. For emerging, neutralized Ne super(0), a distinct energy loss mechanism is shown to occur, namely the excitation of FK phonons and other types of surface collective modes associated with the screening of the F super(0) 'hole' left behind by the neutralization process. This mechanism contributes a large fraction of the loss, additional to that suffered by the incident Ne super(+) ion. The model explains the experimental observations quantitatively (1999 Phys. Rev. Lett. 83 5378). The paper ends with a discussion of the large energy broadening of the observed loss peaks.
ISSN:0953-8984
1361-648X
DOI:10.1088/0953-8984/25/35/355009