Published February 2012 | Version v1
Journal article

Polarization wake of penetrating ions: oscillator model

  • 1. Institut fuer Experimentalphysik, Joanner Kepler Universitaet, 4040 Linz-Auhof (Austria)
  • 2. Department of Physics Chemistry and Pharmacy, University of Southern Denmark, 5230 Odense M (Denmark)

Description

The wake potential induced by a swift nonrelativistic ion has been studied theoretically for a random stopping medium consisting of quantal-harmonic-oscillator atoms. The primary purpose has been to study the influence of atomic binding on the frequently-studied wake potential in a Fermi gas. Quantitative comparisons at constant plasma frequency and increasing oscillator frequency show a gradual decrease in wavelength and a slight decrease in amplitude of the oscillatory part of the wake potential, as well as a systematic decrease in screening of the near-field next to the projectile. These findings can be expected on the basis of the Drude-Lorentz formula for the effective resonance frequency. We find a distinct dependence of the induced potential on the ion charge as long as the plasma frequency exceeds the oscillator frequency. In the opposite case of a dominating oscillator frequency we find little difference between the field induced by a point charge and that by a neutral atom. As an application area we briefly discuss the proximity effect in the energy loss of molecular ions. We find that the polarization wake modifies the proximity effect, in contrast to the frequently-expressed view that it causes the proximity effect. (authors)

Availability note (English)

Available from doi: http://dx.doi.org/10.1140/epjd/e2012-20761-9

Additional details

Identifiers

Publishing Information

Journal Title
European Physical Journal. D, Atomic, Molecular, Optical and Plasma Physics
Journal Volume
66
Journal Issue
no.2
Journal Page Range
p. 56.1-56.11
ISSN
1434-6060

INIS

Country of Publication
France
Country of Input or Organization
France
INIS RN
44000663
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS; S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
Descriptors DEI
CHARGED-PARTICLE TRANSPORT THEORY; ENERGY LOSSES; IONS; STOPPING POWER
Descriptors DEC
CHARGED PARTICLES; LOSSES; TRANSPORT THEORY

Optional Information

Notes
35 refs.