van Vreumingen Dyon, Tewari Sumit, Verbeek Fons, van Ruitenbeek Jan M
Huygens-Kamerlingh Onnes Laboratorium, Universiteit Leiden, 2333CA Leiden, The Netherlands.
Leiden Insitute of Advanced Computer Science, Universiteit Leiden, 2333CA Leiden, The Netherlands.
Micromachines (Basel). 2018 May 29;9(6):270. doi: 10.3390/mi9060270.
Molecular electronics saw its birth with the idea to build electronic circuitry with single molecules as individual components. Even though commercial applications are still modest, it has served an important part in the study of fundamental physics at the scale of single atoms and molecules. It is now a routine procedure in many research groups around the world to connect a single molecule between two metallic leads. What is unknown is the nature of this coupling between the molecule and the leads. We have demonstrated recently (Tewari, 2018, Ph.D. Thesis) our new setup based on a scanning tunneling microscope, which can be used to controllably manipulate single molecules and atomic chains. In this article, we will present the extension of our molecular dynamic simulator attached to this system for the manipulation of single molecules in real time using a graphics processing unit (GPU). This will not only aid in controlled lift-off of single molecules, but will also provide details about changes in the molecular conformations during the manipulation. This information could serve as important input for theoretical models and for bridging the gap between the theory and experiments.
分子电子学诞生于用单个分子作为独立组件构建电子电路的想法。尽管其商业应用仍然有限,但它在单原子和单分子尺度的基础物理学研究中发挥了重要作用。如今,在世界各地的许多研究小组中,将单个分子连接在两个金属电极之间已成为常规操作。目前尚不清楚的是分子与电极之间这种耦合的本质。我们最近(特瓦里,2018年,博士论文)展示了基于扫描隧道显微镜的新装置,该装置可用于可控地操纵单个分子和原子链。在本文中,我们将介绍附加到该系统的分子动力学模拟器的扩展,该模拟器使用图形处理单元(GPU)实时操纵单个分子。这不仅有助于单个分子的可控剥离,还将提供有关操纵过程中分子构象变化的详细信息。这些信息可以作为理论模型的重要输入,并有助于弥合理论与实验之间的差距。