Hollow-ion formation in microcapillaries

K. Tőkési, L. Wirtz, C. Lemell, and J. Burgdörfer
Phys. Rev. A 64, 042902 – Published 17 September 2001
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Abstract

Transmission of highly charged ions through microcapillaries is studied theoretically by a classical trajectory simulation. The interaction of highly charged ions with the internal surface of the capillary is treated within the framework of dielectric-response theory. The simulation is based on the classical over-the-barrier model modified for open cylindrical surfaces. The multielectron evolution and relaxation is taken into account as a stochastic event sequence. We consider N6+ and Ne10+ with an energy of 2.1 keV/amu passing through a metallic microcapillary of Ni. We analyze the distance of closest approach, the angular distribution, and the distribution of the mean occupation numbers of n shells of highly charged ions. We find the resulting charge state distribution of transmitted projectiles in good agreement with recent measurements. Implications for nanotube targets will be discussed.

  • Received 28 February 2001

DOI:https://doi.org/10.1103/PhysRevA.64.042902

©2001 American Physical Society

Authors & Affiliations

K. Tőkési*, L. Wirtz, C. Lemell, and J. Burgdörfer

  • Institute for Theoretical Physics, Vienna University of Technology, Wiedner Hauptstrasse 8-10 /E-136, A-1040 Vienna, Austria

  • *Permanent address: Institute of Nuclear Research of the Hungarian Academy of Sciences (ATOMKI), P.O. Box 51, H-4001 Debrecen, Hungary.

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Vol. 64, Iss. 4 — October 2001

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