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Atomistic simulation for strain effects on threshold displacement energies in refractory metals

机译:耐火金属中阈值位移能力的应变效应原子模拟

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To evaluate the extent of radiation damage for specific materials, defect formation energies and threshold displacement energies (TDEs) are important quantities. In this work, we study the influence of hydrostatic and uniaxial strains on the Frenkel pair formation energy (FPE) and TDE for tungsten, molybdenum, and vanadium, which can be used in plasma devices and fusion reactors. With an applied tensile strain, the self-interstitial atom formation energy decreases significantly, while the vacancy formation energy slightly increases, which causes concurrent decreases in the FPE and TDE. The opposite responses are observed with an applied compression strain. This result indicates that radiation defect formation is enhanced by a tensile strain and suppressed by a compressive strain. The strain effects on the TDE and FPE are determined mainly by the volume change in the deformed crystal, regardless of the strain mode. Both the TDE and FPE under strain conditions are described by linear functions of the volume change.
机译:为了评估特定材料的辐射损伤程度,缺陷地层能量和阈值位移能量(TDES)是重要的。在这项工作中,我们研究了静脉曲张对形成能量(FPE)和TDE的静脉静脉和单轴菌株对钨,钼和钒的影响,可用于等离子体器件和熔融反应器。采用施加的拉伸菌株,自隙原子形成能量显着降低,而空位形成能量略有增加,这导致FPE和TDE中的同时降低。用施加的压缩菌株观察相反的反应。该结果表明,通过拉伸菌株增强辐射缺陷形成并被压缩菌株抑制。无论应变模式如何,主要通过变形晶体中的体积变化来确定TDE和FPE的应变效应。在应变条件下的TDE和FPE都是通过体积变化的线性函数来描述的。

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