Abstract
Tungsten displays high strength in extreme temperature and radiation environments and is considered a promising plasma facing material for fusion nuclear reactors. Unlike other metals, it experiences substantial irradiation hardening, which limits service life and presents safety concerns. The origin of ultrahigh-irradiation hardening in tungsten cannot be well-explained by conventional strengthening theories. Here, we demonstrate that irradiation leads to near 3-fold increases in strength, while the usual defects that are generated only contribute less than one-third of the hardening. An analysis of the distribution of tagged atom-helium ions reveals that more than 87% of vacancies and helium atoms are unaccounted for. A large fraction of helium-vacancy complexes are frozen in the lattice due to high vacancy migration energies. Through a combination of in situ nanomechanical tests and atomistic calculations, we provide evidence that irradiation hardening mainly originates from high densities of atomic-scale hidden point-defect complexes. © 2021 American Chemical Society.
| Original language | English |
|---|---|
| Pages (from-to) | 5798-5804 |
| Journal | Nano Letters |
| Volume | 21 |
| Issue number | 13 |
| Online published | 6 Jul 2021 |
| DOIs | |
| Publication status | Published - 14 Jul 2021 |
| Externally published | Yes |
Funding
We thank Prof. Ju Li (MIT) and Prof. Fei Gao (University of Michigan) for fruitful discussion. This research was supported by the National Natural Science Foundation of China (Grant Nos. 51971170, 51922082, and 51942104), the National Key Research and Development Program of China (Grant No. 2017YFB0702301), the 111 Project of China (Grant No. BP2018008), and the Innovation Project of Shaanxi Province (Grant No. 2017KTPT-12).
Research Keywords
- Dislocation
- Hardening
- Helium
- Irradiation
- Tungsten
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