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Irradiation-induced grain growth and defect evolution in nanocrystalline zirconia with doped grain boundaries

机译:掺杂晶界的纳米氧化锆中的辐照诱导晶粒生长和缺陷演化

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摘要

Grain boundaries are effective sinks for radiation-induced defects, ultimately impacting the radiation tolerance of nanocrystalline materials (dense materials with nanosized grains) against net defect accumulation. However, irradiation-induced grain growth leads to grain boundary area decrease, shortening potential benefits of nanostructures. A possible approach to mitigate this is the introduction of dopants to target a decrease in grain boundary mobility or a reduction in grain boundary energy to eliminate driving forces for grain growth (using similar strategies as to control thermal growth). Here we tested this concept in nanocrystalline zirconia doped with lanthanum. Although the dopant is observed to segregate to the grain boundaries, causing grain boundary energy decrease and promoting dragging forces for thermally activated boundary movement, irradiation induced grain growth could not be avoided under heavy ion irradiation, suggesting a different growth mechanism as compared to thermal growth. Furthermore, it is apparent that reducing the grain boundary energy reduced the effectiveness of the grain boundary as sinks, and the number of defects in the doped material is higher than in undoped (La-free) YSZ.
机译:晶界是辐射诱发缺陷的有效吸收体,最终会影响纳米晶材料(具有纳米晶粒的致密材料)对净缺陷累积的辐射耐受性。但是,辐照引起的晶粒长大导致晶粒边界面积减小,从而缩短了纳米结构的潜在效益。缓解这种情况的一种可能方法是引入掺杂剂,以降低晶界迁移率或降低晶界能量,从而消除晶粒生长的驱动力(使用与控制热生长相似的策略)。在这里,我们在掺有镧的纳米晶氧化锆中测试了这一概念。尽管观察到掺杂剂偏析到晶界,导致晶界能量降低,并促进热激活边界运动的拖曳力,但在重离子辐照下仍无法避免辐照引起的晶粒长大,这表明与热生长相比,生长机理有所不同。此外,显而易见的是,降低晶界能降低了晶界作为凹陷的有效性,并且掺杂材料中的缺陷数量高于未掺杂(无镧)YSZ中的缺陷数量。

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