Auger-electron cascades in diamond and amorphous carbon
arXiv:cond-mat/0109430 · doi:10.1103/PhysRevB.64.214104
Abstract
We have analyzed the cascade of secondary electrons in diamond and amorphous carbon generated by the thermalisation of a single Auger electron. The elastic electron mean free path was calculated as a function of impact energy in the muffin-tin potential approximation. The inelastic scattering cross section and the energy loss of the electron (expressed in terms of differential inverse mean free path) were estimated from two "optical" models, that utilise the measured dielectric constants of the materials. Using these data, a Monte-Carlo model describing the time evolution of the cascade was constructed. The results show that at most around 20-40 secondary cascade electrons are released by a single Auger electron in a macroscopic sample of diamond or amorphous carbon. Consideration of the real band structure of diamond reduces this number further. The release of the cascade electrons happens within the first 100 femtoseconds after the emission of the primary Auger electron. The results have implications to planned experiments with femtosecond X-ray sources.
18 pages, latex, 9 figures
Cited by in corpus (11)
- Dynamics in a cluster under the influence of intense femtosecond hard x-ray pulses
- Electron Cascades Produced by Photoelectrons in Diamond
- Auger Electron Cascades in Water and Ice
- Time-resolved observation of band-gap shrinking and electron-lattice thermalization within X-ray excited gallium arsenide
- Space-time evolution of electron cascades in diamond
- Radiation damage in biological material: electronic properties and electron impact ionization in urea
- Incoherent x-ray scattering in single molecule imaging
- Femtosecond reduction of atomic scattering factors triggered by intense x-ray pulse
- Delayed onset and directionality of x-ray-induced atomic displacements observed on subatomic length scales
- Effect of two-particle correlations on x-ray coherent diffractive imaging studies performed with continuum models
- Interplay of thermal and non-thermal effects in x-ray-induced ultrafast melting