| Literature DB >> 29213112 |
Clemens Scheuner1, Steffen Jankuhn2, Jürgen Vogt2, Sébastien Pezzagna2,3, Christina Trautmann4,5, Jan Meijer2,3.
Abstract
Long channels with diameter of few tens of nanometer are produced by chemical track etching of swift heavy ion irradiated muscovite sheets. Such small apertures are most suitable e.g. as beam defining apertures for focusing systems in ion beam facilities enabling beam diameters down to a few nanometers. One of the most important parameters to consider is the interaction of the ion beam with the walls of the aperture. We report angle-resolved transmission and energy-loss measurements of MeV ion beams through ion-track-etched capillaries with very high aspect ratio of about 60. For all ion energies, the angle-resolved transmission curves measured through the channels show a significant enhancement with respect to the expected pure geometrical considerations. This broadening of the acceptance angle increases further when the kinetic energy is reduced. This effect is ascribed to low-angle scattering of the ions at the surface of the muscovite capillary walls. These results are well described by simulations applying a similar approach as used for ion beam channeling in crystals.Entities:
Year: 2017 PMID: 29213112 PMCID: PMC5719017 DOI: 10.1038/s41598-017-17005-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Scanning electron images of track-etched channels at low and high magnification. (b) Scheme of channel cross-section with average shape size nm, nm and nm. The angles are and . (c) Channel cross-section A after track etching deduced from SEM images of 20 channels.
Figure 2Measured transmission yield as a function of the tilt angle for three different ion energies. The transmission expected from geometric considerations only is also plotted for the short (—) and long () axis of the rhombus-shaped pores. The black arrow shows the full width at half maximum β.
Figure 3(a) Transmission yield as a function of tilt angle α for 2 MeV N2+ () projectiles. The solid lines are the calculated minimum and maximum values for axial () and planar (—) channeling, respectively. (b) FWHM angle β as a function of projectile energy for the measured data and calculated (min, max) distributions for planar and axial channeling. The error region is between the two lines. The dashed line is a fit to the experimental data.
Figure 4(a) Recorded number of N2+ ions with an initial energy of 2 MeV, as recorded with a surface barrier detector after transmission through the capillaries in the muscovite sheet under various angles between sheet and ion beam. The direct curve was measured without a sheet. The maximum of the direct peak and of the peak measured for 0° are normalized to one. The other two peaks are normalized to the 0° peak. The angle uncertainty is . (b) Mean energy of the transmitted ions with corresponding measurement error.