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Improved high temperature radiation damage tolerance in a three-phase ceramic with heterointerfaces

机译:改进了具有异质界面的三相陶瓷的高温辐射损伤耐受性

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摘要

Radiation damage tolerance for a variety of ceramics at high temperatures depends on the material’s resistance to nucleation and growth of extended defects. Such processes are prevalent in ceramics employed for space, nuclear fission/fusion and nuclear waste environments. This report shows that random heterointerfaces in materials with sub-micron grains can act as highly efficient sinks for point defects compared to grain boundaries in single-phase materials. The concentration of dislocation loops in a radiation damage-prone phase (Al2O3) is significantly reduced when Al2O3 is a component of a composite system as opposed to a single-phase system. These results present a novel method for designing exceptionally radiation damage tolerant ceramics at high temperatures with a stable grain size, without requiring extensive interfacial engineering or production of nanocrystalline materials.
机译:多种陶瓷在高温下的辐射损伤耐受性取决于材料的抗成核性和扩展缺陷的生长。这种方法在用于太空,核裂变/核聚变和核废料环境的陶瓷中很普遍。该报告表明,与单相材料中的晶界相比,具有亚微米级晶粒的材料中的随机异质界面可作为点缺陷的高效吸收区。当Al2O3是复合系统的组成部分而不是单相系统时,易辐射破坏相(Al2O3)中位错环的浓度会大大降低。这些结果提出了一种新颖的方法,用于设计高温下具有稳定晶粒尺寸的耐辐射损伤陶瓷,而无需进行广泛的界面工程或纳米晶材料的生产。

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