Diffraction of fast atoms and molecules from surfaces
arXiv:0806.1697 · doi:10.1103/PhysRevB.78.155408
Abstract
Prompted by recent experimental developments, a theory of surface scattering of fast atoms at grazing incidence is developed. The theory gives rise to a quantum mechanical limit for ordered surfaces that describes coherent diffraction peaks whose thermal attenuation is governed by a Debye-Waller factor, however, this Debye-Waller factor has values much larger than would be calculated using simple models. A classical limit for incoherent scattering is obtained for high energies and temperatures. Between these limiting classical and quantum cases is another regime in which diffraction features appear that are broadened by the motion in the fast direction of the scattered beam but whose intensity is not governed by a Debye-Waller factor. All of these limits appear to be accessible within the range of currently available experimental conditions.
37 pages including 3 figures
Cited by in corpus (16)
- Semi-quantum approach for fast atom diffraction: solving the rainbow divergence
- Elastic and inelastic diffraction of fast atoms,\linebreak Debye-Waller factor and Mössbauer-Lamb-Dicke regime
- Dynamical van der Waals atom -surface interaction
- Image processing for grazing incidence fast atom diffraction
- Fast atom diffraction inside a molecular beam epitaxy chamber, a rich combination
- The interaction of atoms with LiF(001) revisited
- Refraction of fast Ne atoms in the attractive well of LiF(001) surface
- Helium diffraction on SiC grown graphene, qualitative and quantitative description with the hard corrugated wall model
- Atom beam triangulation of organic layers at 100 meV normal energy: self-assembled perylene on Ag(110) at room temperature
- Phonon contribution in grazing-incidence fast atom diffraction from insulator surfaces
- Thermal effects on helium scattering from LiF(001) at grazing incidence
- Energy loss and inelastic diffraction of fast atoms at grazing incidence
- Temperature dependence in fast-atom diffraction at surfaces
- Decoherent phonon effects in fast atom-surface scattering
- Diffraction of fast heavy noble gas atoms, Ar, Kr and Xe on a LiF(001) surface Changing the tip of a 'perfect' AFM
- Quantum regime for the nuclear energy loss of fast atoms above crystal surfaces