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New insight into the helium-induced damage in MAX phase Ti3AlC2 by first-principles studies

机译:通过第一性原理研究MAX相Ti3AlC2中氦诱导的损伤

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In the present work, the behavior of He in the MAX phase Ti3AlC2 material is investigated using first-principle methods. It is found that, according to the predicted formation energies, a single He atom favors residing near the Al plane in Ti3AlC2. The results also show that Al vacancies are better able to trap He atoms than either Ti or C vacancies. The formation energies for the secondary vacancy defects near an Al vacancy or a C vacancy are strongly influenced by He impurity content. According to the present results, the existence of trapped He atoms in primary Al vacancy can promote secondary vacancy formation and the He bubble trapped by Al vacancies has a higher tendency to grow in the Al plane of Ti3AlC2. The diffusion of He in Ti3AlC2 is also investigated. The energy barriers are approximately 2.980 eV and 0.294 eV along the c-axis and in the ab plane, respectively, which means that He atoms exhibit faster migration parallel to the Al plane. Hence, the formation of platelet-like bubbles nucleated from the Al vacancies is favored both energetically and kinetically. Our calculations also show that the conventional spherical bubbles may be originated from He atoms trapped by C vacancies. Taken together, these results are able to explain the observed formation of bubbles in various shapes in recent experiments. This study is expected to provide new insight into the behaviors of MAX phases under irradiation from electronic structure level in order to improve the design of MAX phase based materials. (C) 2015 AIP Publishing LLC.
机译:在本工作中,使用第一性原理研究了He在MAX相Ti3AlC2材料中的行为。发现,根据预测的形成能,单个He原子倾向于存在于Ti3AlC2的Al平面附近。结果还表明,Al空位比Ti空位或C空位更能捕获He原子。铝空位或碳空位附近的二次空位缺陷的形成能受氦杂质含量的强烈影响。根据目前的结果,在原始的Al空位中存在被捕获的He原子可以促进二次空位的形成,并且被Al空位捕获的He气泡在Ti3AlC2的Al平面中具有更高的生长趋势。还研究了He在Ti3AlC2中的扩散。沿c轴和ab平面的能垒分别约为2.980 eV和0.294 eV,这意味着He原子平行于Al平面的迁移更快。因此,从空位上成核的血小板状气泡的形成在能量上和动力学上都是有利的。我们的计算还表明,常规球形气泡可能源自C空位所俘获的He原子。总之,这些结果能够解释在最近的实验中观察到的各种形状的气泡形成。这项研究有望为电子结构水平下的MAX相的行为提供新的见解,从而改善基于MAX相的材料的设计。 (C)2015 AIP Publishing LLC。

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