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在原子尺度下对金属电极进行机械退火。

Mechanical annealing of metallic electrodes at the atomic scale.

机构信息

Departamento de Física Aplicada, Universidad de Alicante, San Vicente del Raspeig, E-03690 Alicante, Spain.

出版信息

Phys Rev Lett. 2012 May 18;108(20):205502. doi: 10.1103/PhysRevLett.108.205502. Epub 2012 May 14.

Abstract

The process of creating an atomically defined and robust metallic tip is described and quantified using measurements of contact conductance between gold electrodes and numerical simulations. Our experiments show how the same conductance behavior can be obtained for hundreds of cycles of formation and rupture of the nanocontact by limiting the indentation depth between the two electrodes up to a conductance value of approximately 5G0 in the case of gold. This phenomenon is rationalized using molecular dynamics simulations together with density functional theory transport calculations which show how, after repeated indentations (mechanical annealing), the two metallic electrodes are shaped into tips of reproducible structure. These results provide a crucial insight into fundamental aspects relevant to nanotribology or scanning probe microscopies.

摘要

描述并量化了使用金电极之间的接触电导测量和数值模拟来创建原子定义和稳健的金属尖端的过程。我们的实验表明,通过将两个电极之间的压入深度限制在金的约 5G0 的电导值,如何可以在纳米接触的形成和破裂的数百个循环中获得相同的电导行为。使用分子动力学模拟和密度泛函理论输运计算来合理化这一现象,表明在重复压入(机械退火)后,两个金属电极如何被塑造成具有可重复结构的尖端。这些结果为与纳摩擦学或扫描探针显微镜相关的基本方面提供了重要的见解。

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