New Journal of Physics (Jan 2017)

Defect imaging and detection of precipitates using a new scanning positron microbeam

  • T Gigl,
  • L Beddrich,
  • M Dickmann,
  • B Rienäcker,
  • M Thalmayr,
  • S Vohburger,
  • C Hugenschmidt

DOI
https://doi.org/10.1088/1367-2630/aa915b
Journal volume & issue
Vol. 19, no. 12
p. 123007

Abstract

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We report on a newly developed scanning positron microbeam based on threefold moderation of positrons provided by the high intensity positron source NEPOMUC. For brightness enhancement a remoderation unit with a 100 nm thin Ni(100) foil and 9.6% efficiency is applied to reduce the area of the beam spot by a factor of 60. In this way, defect spectroscopy is enabled with a lateral resolution of 33 μ m over a large scanning range of 19 × 19 mm ^2 . Moreover, 2D defect imaging using Doppler broadening spectroscopy (DBS) is demonstrated to be performed within exceptional short measurement times of less than two minutes for an area of 1 × 1 mm ^2 (100 × 100 μ m ^2 ) with a resolution of 250 μ m (50 μ m). We studied the defect structure in laser beam welds of the high-strength age-hardened Al alloy (AlCu _6 Mn, EN AW-2219 T87) by applying (coincident) DBS with unprecedented spatial resolution. The visualization of the defect distribution revealed a sharp transition between the raw material and the welded zone as well as a very small heat affected zone. Vacancy-like defects and Cu rich precipitates are detected in the as-received material and, to a lesser extent, in the transition zone of the weld. Most notably, in the center of the weld vacancies without forming Cu-vacancy complexes, and the dissolution of the Cu atoms in the crystal lattice, i.e. formation of a supersaturated solution, could be clearly identified.

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