Chaos-induced enhancement of resonant multielectron recombination in highly charged ions: Statistical theory
arXiv:1204.3707 · doi:10.1103/PhysRevA.86.022714
Abstract
A statistical theory of resonant multielectron recombination based on properties of chaotic eigenstates is developed. The level density of many-body states increases exponentially with the number of excited electrons. When the residual electron-electron interaction exceeds the interval between these levels, the eigenstates (called compound states or compound resonances if these states are in the continuum) become "chaotic" superpositions of large numbers of Hartree-Fock configurational basis states. This situation takes place in some rare-earth atoms and many open-shell multiply charged ions excited in the process of electron recombination. Our theory describes resonant multielectron recombination via dielectronic doorway states leading to such compound resonances. The result is a radiative capture cross section averaged over a small energy interval containing several compound resonances. In many cases individual resonances are not resolved experimentally (since the interval between them is small, e.g., meV, possibly even smaller than their radiative widths), therefore, our statistical theory should correctly describe the experimental data. We perform numerical calculations of the recombination cross sections for tungsten ions W, --25. The recombination rate for W measured recently [Phys. Rev. A {\bf 83}, 012711 (2011)] is greater than the direct radiative recombination rate at low energies, and our result for W agrees with the measurements.
10 pages, 5 figures, submitted to Phys.Rev. A
References in corpus (3)
Cited by in corpus (12)
- Optical spectroscopy of complex open 4-shell ions Sn-Sn
- Recombination of W18+ ions with electrons: Absolute rate coefficients from a storage-ring experiment and from theoretical calculations
- Electron-ion merged-beam experiments at heavy-ion storage rings
- Electron recombination, photoionization and scattering via many-electron compound resonances
- Coherent and stochastic contributions of compound resonances in atomic processes: Electron recombination, photoionization and scattering
- Resonant electronic-bridge excitation of the U-235 nuclear transition in ions with chaotic spectra
- Dielectronic recombination of lanthanide and low ionization state tungsten ions: W - W
- Time reversal invariance violation in neutron-nucleus scattering
- Recombination of open-f-shell tungsten ions
- Level-resolved quantum statistical theory of electron capture into many-electron compound resonances in highly charged ions
- Dielectronic recombination of the open -shell of Tungsten: W - W
- Electron recombination with tungsten ions with open f-shells