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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Disordering of helium gas bubble superlattices in molybdenum under ion irradiation and thermal annealing
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Disordering of helium gas bubble superlattices in molybdenum under ion irradiation and thermal annealing

机译:离子照射下钼氦气泡超晶格的障碍及热退火

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Self-organization of gas bubbles causes the formation of an ordered array of nanoscale gas bubbles (a gas bubble superlattice), a highly efficient mechanism for gas storage under irradiation. The stability of helium (He) gas bubble superlattices in molybdenum (Mo) under krypton (Kr) ion irradiation and thermal annealing has been investigated. The He gas bubble superlattices gradually become disordered under Kr ion irradiation at 300 degrees C, and the order-disorder transformation process completes at 2.5 dpa. Both transmission electron microscopy (TEM) and synchrotron-based small-angle X-ray scattering (SAXS) reveal that the order-disorder transformation of He gas bubble superlattices is associated with a slight increase in the average bubble size. Phase-field modeling indicates that the inhomogeneous growth and coarsening of bubbles/voids cause the disordering of imperfect superlattices under irradiation and implies that highly ordered superlattices could potentially exhibit much stronger resistance to irradiation damage. Under thermal annealing, the He gas bubble superlattices in Mo become unstable and disordered at 1000 degrees C with the bubble size increasing from -1.1 to-1.6 nm. The finding in this research provides insights into the disordering mechanisms of defect superlattices as well as guidance for designing stable defect superlattices in harsh environments. (C) 2020 Elsevier B.V. All rights reserved.
机译:气泡自组织导致形成有序的纳米级气泡(气泡超晶格),在照射下是气体储气的高效机制。研究了氪(MO)下氦(KR)离子照射和热退火下钼(MO)中氦气(HE)气泡超短晶格的稳定性。在300摄氏度下,He气泡超级曲线逐渐变化在KR离子照射下逐渐变化,并且订单紊乱转化过程在2.5 DPA下完成。透射电子显微镜(TEM)和基于同步的小角X射线散射(萨克斯)揭示了他气泡超晶格的秩序变性转化与平均气泡尺寸的略微增加相关。相场建模表明气泡/空隙的不均匀生长和粗化导致辐照下不完全超晶格的失调,并且意味着高度有序的超晶格可能会对照射损伤具有更强的抵抗力。在热退火下,MO的气泡超晶格在1000℃下变得不稳定并且在1000摄氏度下变化,气泡尺寸从-1.1至-1.6nm增加。本研究中的发现提供了缺陷超级图案的无障碍机制的见解以及在恶劣环境中设计稳定缺陷超晶格的指导。 (c)2020 Elsevier B.v.保留所有权利。

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