Electron loss from 0.74- and 1.4-mev/u low-charge-state argon and xenon ions colliding with neon, nitrogen, and argon
Robert D. DuBois,A. C. F. Santos,R. E. Olson,Th. Stöhlker,F. Bosch,A. Bräuning-Demian,A. Gumberidze,S. Hagmann,Christophor Kozhuharov,Rido Mann,A. Oršić Muthig,U. Spillmann,S. Tachenov,W. Barth,L. Dahl,B. Franzke,J. Glatz,L. Gröning,S. Richter,D. Wilms,A. Krämer,K. Ullmann,Ottmar Jagutzki +22 more
TL;DR: In this paper, the authors measured absolute total-, single-, and multiple-electron-loss cross sections for collisions at 0.74 and 1.4 MeV/u.
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Abstract: Absolute total-, single-, and multiple-electron-loss cross sections are measured for $({\mathrm{Ar}}^{+}\ensuremath{-},$ ${\mathrm{Ar}}^{2+}\ensuremath{-},$ ${\mathrm{Xe}}^{3+})\ensuremath{-}(\mathrm{Ne},$ ${\mathrm{N}}_{2},$ Ar) collisions at 0.74 and 1.4 MeV/u. In addition, a many-body classical trajectory Monte Carlo model was used to calculate total- and multiple-electron-loss cross sections for ${\mathrm{Ar}}^{+}$ impact. For ${\mathrm{N}}_{2}$ and Ar targets, excellent agreement between the measured and calculated cross sections is found; for the Ne target the experimental data are approximately 40% smaller than the theoretical predictions. The experimental data are also used to examine cross-section scaling characteristics for electron loss from fast, low-charge-state, heavy ions. It is shown that multiple electron loss increased the mean charge states of the outgoing argon and xenon ions by 2 and 3 respectively. The cross sections decreased with increasing number of electrons lost and scaled roughly as the inverse of the sum of the ionization potentials required to sequentially remove the most weakly bound, next most weakly bound, etc., electrons. This scaling was found to be independent of projectile, incoming charge state, and target. In addition, the experimental total loss cross sections are found to be nearly constant as a function of initial projectile charge state. As a function of impact energy, the theoretical predictions yield an ${E}^{\ensuremath{-}1/3}$ behavior between 0.5 and 30 MeV/u for the total loss cross sections. Within error bars, the data are consistent with this energy dependence but are also consistent with an ${E}^{\ensuremath{-}1/2}$ energy dependence.
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Citations
Collision processes involving heavy many-electron ions interacting with neutral atoms
TL;DR: An overview of experimental data and theoretical computational methods for effective cross sections of charge exchange (electron capture) and electron loss (projectile ionization) processes involving heavy many-electron ions (like Xe qa,P b qa, W qa and U qa ) colliding with neutral atoms (H, He, N, Ne, Ar, Kr, Xe) in the E 10 keV/u-10 GeV/U energy range, i.e., from low up to relativistic energies as mentioned in this paper.
146
Projectile electron loss and capture in MeV/u collisions of U28+ with H2, N2 and Ar
TL;DR: In this paper, the authors measured the electron capture and loss cross sections for U28+ colliding with H2, N2 and Ar at 3.5 and 6.5 MeV/u.
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Electron loss from 1.4-MeV/u U 4,6,10+ ions colliding with Ne, N 2 , and Ar targets
Robert D. DuBois,A. C. F. Santos,Th. Stöhlker,F. Bosch,A. Bräuning-Demian,A. Gumberidze,S. Hagmann,C. Kozhuharov,Rido Mann,A. Oršić Muthig,U. Spillmann,S. Tachenov,W. Bart,L. Dahl,B. Franzke,J. Glatz,L. Gröning,S. Richter,D. Wilms,K. Ullmann,Ottmar Jagutzki +20 more
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Cross sections for charge change in argon and equilibrium charge states of 3.5 MeV/amu uranium ions passing through argon and carbon targets
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Multiple ionization of fast heavy ions by neutral atoms in the energy deposition model
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