Abstract
A time-dependent approach for treating electron-hydrogen scattering is reported that utilizes a fully correlated two-electron wavefunction represented on a three-dimensional lattice using the basis-spline collocation method. The lattice, time-dependent approach obviates the need for consideration of the three-body Coulomb boundary conditions, avoids the use of severe approximations such as those of perturbation theory for slow collisions, and provides a relatively dense representation of the one- and two-electron continua. Probabilities for excitation and ionization are computed by projection onto lattice eigenstates of the H atom. Partial cross sections for excitation and ionization are obtained and compared with results of other theoretical methods for the 1 S and 3 S channels.
| Original language | American English |
|---|---|
| Journal | Journal of Physics B: Atomic, Molecular and Optical Physics |
| Volume | 32 |
| DOIs | |
| State | Published - Jun 1 1999 |
Keywords
- Atoms
- Boundary conditions
- Eigenvalues and eigenfunctions
- Electric excitation
- Electrons
- Hydrogen
- Ionization
- Nonlinear equations
- Probability
- Basis spline collocation method
- Partial cross sections
- Three body Coulomb boundary conditions
- Time dependent approach
- Electron scattering
Disciplines
- Physics
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