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Structural and electronic effects of adatoms on metallic atomic chains in Si(111)5 × 2-Au

机译:硅原子对Si(111)5×2-Au中金属原子链的结构和电子效应

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摘要

We investigate the effects of native Si adatoms on structural and electronic properties of the Si(111)5 × 2-Au surface, a representative one-dimensional metal-chain system, by means of scanning tunneling microscopy (STM) and density functional theory (DFT) calculations. High-resolution STM images of relatively long adatom-free chain segments evidence directly the inherent ×2 reconstruction, which is the essential part of a recently proposed structural model based on a renewed Au coverage of 0.7 monolayer. On the other hand, STM images for chain segments of different lengths reveal that the structural distortion induced by Si adatoms is confined in neighboring unit cells, in good agreement with DFT calculations based on that model. Si adatoms greatly affect the metallic bands of Au chains, one of which becomes fully occupied and represents a tightly confined electronic state to the distortion around Si adatoms, potentially forming short insulating segments within metallic chains. This finding provides an atomic-scale understanding of the observed gradual metal-insulator transition and atomic-scale phase separation induced by Si adatoms.
机译:我们通过扫描隧道显微镜(STM)和密度泛函理论(%)研究了天然Si原子对具有代表性的一维金属链系统Si(111)5 a×2-Au表面的结构和电子性能的影响( DFT)计算。相对较长的无吸附链段的高分辨率STM图像直接证明了固有的×2重建,这是最近提出的基于更新的0.7单层Au覆盖率的结构模型的重要组成部分。另一方面,不同长度链段的STM图像显示,硅吸附原子引起的结构变形被限制在相邻的晶胞中,与基于该模型的DFT计算非常吻合。 Si原子极大地影响了Au链的金属带,其中之一被完全占据,并表现出严格的电子状态以限制Si原子周围的形变,从而可能在金属链内形成较短的绝缘段。该发现提供了对所观察到的由硅原子引起的逐步的金属-绝缘体过渡和原子级相分离的原子级理解。

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