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Grain size dependence of the radiation tolerances of nano-amorphous Ti-Si-N composite coatings

机译:纳米非晶Ti-Si-N复合涂层辐射容忍度的粒度依赖性

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Materials with large fractions of interfaces (e.g. nanocrystalline materials and multilayered nanofilms) have attracted attention because of their significantly enhanced ability to tolerate severe irradiation environments. In this paper, the microstructure and nanohardness evolutions of Ti-Si-N nano-amorphous composite coatings with grain sizes from 5 nm to 12 nm were investigated using 50 kev He+ ion bombardment at room temperature. All samples contained amorphous layers that caused decreases in hardness. The amorphous layer thickness and hardness decrement first decreased with the grain size and then increased. Results suggested that the nano/amorphous interfaces in Ti-Si-N coatings can effectively promote defect annihilation during irradiation. However, radiation tolerance was optimized in materials with 9 nm grains due to the competition between the increase in free energy and the energy stored in defects (E-st(o)). In addition, this paper proposed a mechanism that explained the associated decrease in hardness. These results provided the theoretical underpinnings for an understanding of nano-composite material radiation behavior under irradiation.
机译:具有很大比例的界面的材料(例如,纳米晶体材料和多层纳米膜)已经引起了人们的注意,因为它们显着提高了耐受恶劣辐射环境的能力。本文在室温下用50 kev He +离子轰击研究了晶粒尺寸为5 nm至12 nm的Ti-Si-N纳米非晶复合涂层的组织和纳米硬度演变。所有样品均包含导致硬度降低的非晶层。非晶层的厚度和硬度的降低首先随着晶粒尺寸的减小而减小,然后增大。结果表明,Ti-Si-N涂层中的纳米/非晶界面可以有效地促进辐照过程中的defect灭。但是,由于自由能的增加与缺陷中存储的能量(E-st(o))之间的竞争,在具有9 nm晶粒的材料中优化了辐射耐受性。另外,本文提出了一种解释硬度降低的机理。这些结果为理解纳米复合材料在辐射下的辐射行为提供了理论基础。

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