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Softening due to Grain Boundary Cavity Formation and its Competition with Hardening in Helium Implanted Nanocrystalline Tungsten

机译:氦注入纳米晶钨中晶界腔形成的软化及其与硬化的竞争

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摘要

The unique ability of grain boundaries to act as effective sinks for radiation damage plays a significant role in nanocrystalline materials due to their large interfacial area per unit volume. Leveraging this mechanism in the design of tungsten as a plasma-facing material provides a potential pathway for enhancing its radiation tolerance under fusion-relevant conditions. In this study, we explore the impact of defect microstructures on the mechanical behavior of helium ion implanted nanocrystalline tungsten through nanoindentation. Softening was apparent across all implantation temperatures and attributed to bubble/cavity loaded grain boundaries suppressing the activation barrier for the onset of plasticity via grain boundary mediated dislocation nucleation. An increase in fluence placed cavity induced grain boundary softening in competition with hardening from intragranular defect loop damage, thus signaling a new transition in the mechanical behavior of helium implanted nanocrystalline tungsten.
机译:晶界作为辐射破坏的有效汇的独特能力在纳米晶体材料中起着重要作用,因为它们每单位体积的界面面积大。利用这种机制设计钨作为面向等离子体的材料,可以提供一种在熔合相关条件下增强其辐射耐受性的潜在途径。在这项研究中,我们通过纳米压痕探索了缺陷微结构对氦离子注入纳米晶钨的力学行为的影响。在所有注入温度下,软化都是明显的,并且归因于气泡/空腔加载的晶界抑制了通过晶界介导的位错成核作用而开始可塑性的激活势垒。能量密度的增加使空穴引起的晶界软化与晶内缺陷环损伤引起的硬化竞争,从而标志着氦注入的纳米晶钨的机械行为的新转变。

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