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扫描隧道显微镜的直观人机界面:单原子链奇偶振荡的观测

Intuitive human interface to a scanning tunnelling microscope: observation of parity oscillations for a single atomic chain.

作者信息

Tewari Sumit, Bakermans Jacob, Wagner Christian, Galli Federica, van Ruitenbeek Jan M

机构信息

Huygens-Kamerlingh Onnes Laboratory, Leiden University, Niels Bohrweg 2, 2333 CA Leiden, Netherlands.

current address: Department of Materials, University of Oxford, OX1 3PH, Oxford, United Kingdom.

出版信息

Beilstein J Nanotechnol. 2019 Feb 4;10:337-348. doi: 10.3762/bjnano.10.33. eCollection 2019.

Abstract

A new way to control individual molecules and monoatomic chains is devised by preparing a human-machine augmented system in which the operator and the machine are connected by a real-time simulation. Here, a 3D motion control system is integrated with an ultra-high vacuum (UHV) low-temperature scanning tunnelling microscope (STM). Moreover, we coupled a real-time molecular dynamics (MD) simulation to the motion control system that provides a continuous visual feedback to the operator during atomic manipulation. This allows the operator to become a part of the experiment and to make any adaptable tip trajectory that could be useful for atomic manipulation in three dimensions. The strength of this system is demonstrated by preparing and lifting a monoatomic chain of gold atoms from a Au(111) surface in a well-controlled manner. We have demonstrated the existence of Fabry-Pérot-type electronic oscillations in such a monoatomic chain of gold atoms and determined its phase, which was difficult to ascertain previously. We also show here a new geometric procedure to infer the adatom positions and therefore information about the substrate atoms, which are not easily visible on clean metallic surfaces such as gold. This method enables a new controlled atom manipulation technique, which we will refer to as point contact pushing (PCP) technique.

摘要

通过构建一个人机增强系统来设计一种控制单个分子和单原子链的新方法,在该系统中,操作员和机器通过实时模拟连接。在此,三维运动控制系统与超高真空(UHV)低温扫描隧道显微镜(STM)集成。此外,我们将实时分子动力学(MD)模拟与运动控制系统相结合,该系统在原子操纵过程中为操作员提供连续的视觉反馈。这使操作员成为实验的一部分,并能做出任何适用于三维原子操纵的尖端轨迹。通过以良好控制的方式从Au(111)表面制备并提起金原子的单原子链,证明了该系统的优势。我们已经证明了在这种金原子单原子链中存在法布里 - 珀罗型电子振荡,并确定了其相位,这在以前是难以确定的。我们在此还展示了一种新的几何方法,用于推断吸附原子的位置,从而获取有关衬底原子的信息,这些信息在诸如金等清洁金属表面上不易看到。这种方法实现了一种新的可控原子操纵技术,我们将其称为点接触推压(PCP)技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2325/6369976/d1dec71424e1/Beilstein_J_Nanotechnol-10-337-g002.jpg

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