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Accessing electronic and vibronic quanta and their coherent interactions in atomically precise nanostructures.

机译:在原子精确的纳米结构中访问电子和振动的量子及其相干相互作用。

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摘要

In condensed matter systems the spatial limit is given by the fundamental atomic and molecular interactions. Controlling matter at these length scales hold promise in both fundamental scientific research as well as applications in nanotechnology and related fields such as electronics, biochemistry and medicine. Atomic and molecular manipulation on surfaces has opened a new realm of possibilities where materials can be engineered at the spatial limit and artificial structures can be constructed with a bottom-up approach, one building block at a time.; This thesis describes nanostructures assembled from CO molecules on Cu(111) using a custom-built low-temperature ultra-high vacuum (UHV) scanning tunneling microscope (STM). The design and performance of the atom-manipulation apparatus that has enabled these experiments is presented. The control of electronic and vibronic states is demonstrated in several coherent quantum geometries and interactions between these two degrees of freedom are investigated. This work has revealed a virtual vibron process where non-local vibrons are synthesized and focused using a two-dimensional electron gas as a propagation medium and molecular oscillators as a source.; Analysis of higher order harmonic modes of quartz tuning fork sensors is presented in the context of high frequency optical homodyne interferometric detection of subnanometer oscillatory motion. Further developments which could expand upon the work presented herein, in which STM may be combined with quantum force sensing through the use of quartz tuning forks, are suggested.
机译:在凝聚态系统中,空间极限由基本的原子和分子相互作用给出。在这些长度尺度上的控制物质在基础科学研究以及在纳米技术和相关领域(例如电子,生物化学和医学)中的应用都有希望。表面上的原子和分子操作开辟了一个新的可能性领域,可以在空间限制下设计材料,并可以采用自下而上的方法构造人造结构,一次构造一个块。本文描述了使用定制的低温超高真空(UHV)扫描隧道显微镜(STM)在Cu(111)上由CO分子组装而成的纳米结构。介绍了实现这些实验的原子操纵装置的设计和性能。电子和振动状态的控制在几个相干的量子几何中得到证明,并且研究了这两个自由度之间的相互作用。这项工作揭示了一种虚拟的维纶过程,其中使用二维电子气作为传播介质,以分子振荡器为源,合成和聚焦了非局部的维纶。在亚纳米级振动运动的高频光学零差干涉检测的背景下,对石英音叉传感器的高次谐波模式进行了分析。提出了可以在本文中提出的工作基础上进一步发展的建议,其中STM可通过使用石英音叉与量子力传感相结合。

著录项

  • 作者

    Zeltzer, Gabriel.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 O49;
  • 关键词

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