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Multistep atomic reaction enhanced by an atomic force microscope probe on Si(111) and Ge(111) surfaces

机译:原子力显微镜探针增强Si(111)和Ge(111)表面上的多步原子反应

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We present first-principles total-energy electronic-structure calculations that provide the microscopic mechanism of the adatom interchange reaction on the Sn- and Pb-covered Ge(111)-(2 × 8) and the Sb-covered Si(111)-(7 × 7) surfaces with and without the tip of the atomic force microscope (AFM). We find that, without the presence of the AFM tip on the Ge surface, the adatom interchange occurs through the migration of the adatom, the spontaneous formation of the dirtier structures of the two adatoms, the dimer-dimer structural transitions that induce the exchange of the positions of the two adatoms, and then the backward migration of the adatom. We also find that the dimer structure is unfeasible at room temperature on the Si surface and the adatom interchange are hereby unlikely. With the presence of the tip, we find that the reaction pathways are essentially the same for the Ge surface but that the energy barriers of the migration and the exchange processes are substantially reduced by the AFM tip. We further find that the AFM tip induces the spontaneous formation of the dimer structure even on the Si surface, hereby opening a channel of the interchange of the adatoms. Our calculations show that the bond formation between the AFM tip atom and the surface adatom is essential for the atom manipulation using the AFM tip.
机译:我们提出了第一性原理的总能电子结构计算,该计算提供了在被Sn和Pb覆盖的Ge(111)-(2×8)和被Sb覆盖的Si(111)-上发生原子交换反应的微观机理。 (7×7)带有或不带有原子力显微镜(AFM)尖端的表面。我们发现,在锗表面上不存在原子力显微镜尖端的情况下,吸附原子的交换是通过吸附原子的迁移,两个吸附原子的较脏结构的自发形成,诱导二茂铁交换的二聚体-二聚体结构转变而发生的。两个原子的位置,然后向后移动原子。我们还发现,在室温下在Si表面上二聚体结构是不可行的,因此不可能发生吸附原子交换。在存在尖端的情况下,我们发现Ge表面的反应路径基本相同,但是AFM尖端大大降低了迁移和交换过程的能垒。我们进一步发现,AFM尖端甚至在Si表面上也诱导了二聚体结构的自发形成,从而打开了吸附原子交换的通道。我们的计算表明,AFM尖端原子与表面原子之间的键形成对于使用AFM尖端进行原子操作至关重要。

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  • 来源
    《Physical Review. B, Condensed Matter 》 |2016年第8期| 085416.1-085416.8| 共8页
  • 作者单位

    Department of Applied Physics, The University of Tokyo, Hongo, Tokyo 113-8656, Japan;

    Department of Applied Physics, The University of Tokyo, Hongo, Tokyo 113-8656, Japan;

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