4.7 Article

Effect of purity on the vacancy defects induced in self-irradiated tungsten: A combination of PAS and TEM

期刊

JOURNAL OF NUCLEAR MATERIALS
卷 556, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jnucmat.2021.153175

关键词

Tungsten; Self-irradiation; Light-element impurities; Vacancy-complexes; Positron annihilation spectroscopy; TEM

资金

  1. Euratom research and training program 2014-2020 [633053]
  2. European Union
  3. Region center Val de Loire
  4. French Ministry of Research (MESRI-DRRT)

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Vacancy defects in tungsten induced by self-ion irradiation were characterized using PAS and TEM, revealing differences in the formation and evolution of these defects under different irradiation temperatures and sample purities. The role of purity in the formation of vacancy-impurity complexes was identified as critical for understanding the behavior of tungsten in future fusion reactors.
Vacancy defects in tungsten induced by self-ion irradiation were characterized by positron annihilation spectroscopy (PAS) and transmission electron microscopy (TEM). Taking advantage of their complementarity, defects ranging from single vacancies up to vacancy clusters were detected, and the effects of sample purity (99.95 wt.% and 99.9999 wt.%) on their formation and evolution under low damage dose (0.01 to 0.02 dpa) irradiation with 20 and 1.2 MeV-W ions were studied at room temperature (RT), 500 and 700 degrees C respectively. When irradiation was performed at RT, PAS probed mainly single vacancies. At high irradiation temperatures, larger vacancy clusters were detected by both techniques. Both PAS and TEM revealed larger vacancy clusters in the purest samples after irradiation at 500 and 700 degrees C. A significant difference in the evolution of vacancy-type defects related to sample purity was observed. In view of the properties (migration, trapping) of some light-element impurities (LEs), present at high concentrations, determined by first-principles calculation, it is reasonable to assign the effect of purity during the irradiation response to the formation of vacancy-impurity complexes, which is critical for the understanding of the behavior of tungsten in the future fusion reactor. (c) 2021 Published by Elsevier B.V.

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