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Radiation effects and tolerance mechanism in β-eucryptite

机译:β-锂霞石的辐射效应和耐受机理

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摘要

Previous studies on Li-silicates have shown that these materials are resistant to radiation damage even in extreme physical and chemical environments, and are thus promising solid-state breeder materials in fusion reactors. Here, we focus on β-eucryptite as a member of Li-Al silicate class of ceramics with potential for nuclear applications, and study the atomic-scale processes induced by radiation. Using molecular dynamics simulations based on a reactive force field, we have found that upon radiation dosage of 0.21 displacements-per-atom or less, the structure largely retains its long-range order while exhibiting (a) disordering of the Li atoms, (b) distortion of the Si and Al tetrahedra defined as the change in their oxygen-coordination number, and (c) tilting of the Si and Al tetrahedra with respect to one another. We find that Si tetrahedra that distort to face='roman'>SiO3 during exposure to radiation recover significantly upon thermal relaxation, and provide the mechanism for this recovery. This mechanism consists in the tilting of face='roman'>AlO5 polyhedra formed upon exposure so as to satisfy the oxygen-coordination of distorted Si tetrahedra. Doubling the dosage results in a significant increase of the concentration of Si-Al antisite defects, which renders the tolerance mechanism inefficient and leads to amorphization.
机译:先前对硅酸锂的研究表明,即使在极端的物理和化学环境中,这些材料也能抵抗辐射损伤,因此有望在聚变反应堆中用作固态增殖材料。在这里,我们将重点放在具有核应用潜力的Li-Al硅酸盐类陶瓷中的β-锂霞石,并研究辐射诱发的原子尺度过程。使用基于反作用力场的分子动力学模拟,我们发现在辐射剂量为每原子0.21位移或更少时,该结构在很大程度上表现出长距离有序排列,同时表现出(a)Li原子无序,(b )Si和Al四面体的变形定义为氧配位数的变化,以及(c)Si和Al四面体相对于彼此的倾斜。我们发现暴露于辐射期间变形为 face ='roman'> SiO 3 的Si四面体在热松弛后会显着恢复,并提供了机理为此恢复。该机理在于曝光时形成的 face ='roman'> AlO 5 多面体的倾斜,从而满足变形的Si的氧配位。四面体。加倍剂量导致Si-Al反位缺陷的浓度显着增加,这使得耐受机理无效并且导致非晶化。

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