paper

Attosecond dynamics of electron scattering by an absorbing layer

arXiv:2404.12206 · doi:10.1016/j.elspec.2025.147535

Abstract

Attosecond dynamics of electron reflection from a thin film is studied based on a one-dimensional jellium model. Following the Eisenbud-Wigner-Smith concept, the reflection time delay is calculated as the energy derivative of the phase of the complex reflection amplitude . For a purely elastic scattering by a jellium slab of a finite thickness the transmission probability oscillates with the momentum in the solid with a period , and closely follows these oscillations. The reflection delay averaged over an energy interval grows with , but in the limit of the amplitude becomes real, so vanishes. This picture changes substantially with the inclusion of an absorbing potential : As expected, for a sufficiently thick slab the reflection amplitude now tends to its asymptotic value for a semi-infinite crystal. Interestingly, for , around the maxima, the curve strongly deviates from , showing a narrow dip just at the maximum for . An analytical theory of this counterintuitive behavior is developed.

8 pages, 5 figures

References in corpus (2)