Achieving superior radiation tolerance in ceramics via in-situ defect recombination.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41290644.
- Also identified by DOI 10.1038/s41467-025-65545-x and PMC identifier 12647687.
- Licence recorded as CC BY-NC-ND.
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Abstract
Materials that can withstand high radiation doses are crucial for the development of various cutting-edge technologies, such as aerospace, next-generation fission, and future fusion energy. However, few materials can withstand intense radiation doses without suffering from irreversible materials degradation. Herein, we present a strategy to achieve high radiation tolerance by a dynamic in-situ defect recombination, where abundant solutes thermodynamically stabilized within the ceramic lattice combine with radiation-induced defects. We demonstrate that in high-entropy pyrochlore oxide (HEPO) based solid solutions, little microstructure damage is observed even after He<sup>2+</sup> radiation with energy of 500 keV and 1 × 10<sup>17</sup> ions/cm<sup>2</sup> fluence. HEPO solid solutions exhibit a counterintuitive reordering transition: their structural ordering improves rather than degrades after irradiation. This can be attributed to an in-situ defect recombination, which not only annihilates the radiation-induced defects but also alleviates the lattice distortions. This strategy represents a promising approach for developing materials with high radiation tolerance.