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First-principles investigation of possible clustering of noble gas atoms implanted in bcc tungsten

机译:第一原理研究在密件抄送钨中注入的稀有气体原子可能聚集的原理

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Using first-principles calculations, we have determined key properties of Ar and Ne in bcc W that relate to the possible bubble formation of implanted Ar and Ne atoms. The most stable interstitial site of Ar/Ne in bcc W is the tetrahedral site, as in the case of H and He. An interstitial atom causes the substantial strain of surrounding W atoms and the low electron-density region. The calculated migration energy of both Ar and Ne is very small, less than 0.2 eV of H. We calculated the binding energies of nearby interstitial atoms and found a strong dependence of atomic species. The attractive interaction between Ne atoms is the largest. Owing to such a small migration energy and a significant interaction between Ar/Ne atoms, interstitial atoms can act as traps for additional atoms and tend to form clusters in the absence of previous damage such as vacancies. The results presented here can explain the possible clustering of implanted atoms in bcc W via self-trapping.
机译:使用第一性原理计算,我们确定了bcc W中Ar和Ne的关键特性,与注入的Ar和Ne原子可能形成气泡有关。与H和He一样,bcc W中Ar / Ne最稳定的间隙位点是四面体位点。间隙原子引起周围的W原子和低电子密度区域的大量应变。计算得出的Ar和Ne的迁移能非常小,不到H的0.2 eV。我们计算了附近间隙原子的结合能,发现对原子种类的依赖性很大。 Ne原子之间的吸引力相互作用最大。由于如此小的迁移能和Ar / Ne原子之间的显着相互作用,间隙原子可以充当其他原子的陷阱,并且在没有空位等先前损害的情况下易于形成团簇。此处显示的结果可以解释通过自陷在bcc W中注入原子的可能聚集。

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