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Detection of one-dimensional migration of single self-interstitial atoms in tungsten using high-voltage electron microscopy

机译:使用高电压电子显微镜在钨单个自填隙原子的一维迁移的检测

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The dynamic behaviour of atomic-size disarrangements of atoms-point defects (self-interstitial atoms (SIAs) and vacancies)-often governs the macroscopic properties of crystalline materials. However, the dynamics of SIAs have not been fully uncovered because of their rapid migration. Using a combination of high-voltage transmission electron microscopy and exhaustive kinetic Monte Carlo simulations, we determine the dynamics of the rapidly migrating SIAs from the formation process of the nanoscale SIA clusters in tungsten as a typical body-centred cubic (BCC) structure metal under the constant-rate production of both types of point defects with high-energy electron irradiation, which must reflect the dynamics of individual SIAs. We reveal that the migration dimension of SIAs is not three-dimensional (3D) but one-dimensional (1D). This result overturns the long-standing and well-accepted view of SIAs in BCC metals and supports recent results obtained by ab-initio simulations. The SIA dynamics clarified here will be one of the key factors to accurately predict the lifetimes of nuclear fission and fusion materials.
机译:原子尺寸缺陷的动态行为(自隙原子(SiAS)和空位) - odegen治理结晶材料的宏观性质。然而,由于他们的快速迁移,SIAS的动态尚未完全揭示。使用高压透射电子显微镜和详尽的动力学蒙特卡罗模拟的组合,我们从钨中纳米级SIA簇的形成过程中确定快速迁移的SIAS的动态作为典型的身体中心的立方(BCC)结构金属两种类型点缺陷的恒定速率生产具有高能电子照射,这必须反映各个锡萨的动态。我们揭示了SIAS的迁移尺寸不是三维(3D)但一维(1D)。该结果推翻了BCC金属中的SIAS的长期良好,并支持通过AB-INITIO模拟获得的最近结果。这里澄清的SIA动力学将是准确预测核裂变和融合材料的寿命的关键因素之一。

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