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Quantized conductance through individual rows of suspended gold atoms

机译:通过单行悬浮金原子的定量电导

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As the scale of microelectronic engineering continues to shrink, interest has focused on the nature of electron transport through essentially one-dimensional nanometre-scale channels such as quantum wires and carbon nanotubes. Quantum point contacts (QPCs) are structures (generally metallic) in which a 'neck' of atoms just a few atomic diameters wide (that is, comparable to the conduction electrons' Fermi wavelength) bridges two electrical contacts. They can be prepared by contacting a metal surface with a scanning tunnelling microscope (STM) and by other methods, and typically display a conductance quantized in steps of 2e~2/h(~13 kΩ~(-1)), where e is the electron charge and h is Planck's constant. Here we report conductance measurements on metal QPCs prepared with an STM that we can simultaneously image using an ultrahigh-vacuum electron microscope, which allows direct observation of the relation between electron transport and structure. We observe strands of gold atoms that are about one nanometre long and one single chain of gold atoms suspended between the electrodes. We can thus verify that the conductance of a single strand of atoms is 2e~2/h and that the conductance of a double strand is twice as large, showing that equipartition holds for electron transport in these quantum systems.
机译:随着微电子工程学规模的不断缩小,人们对电子通过本质上一维的纳米级通道(如量子线和碳纳米管)的传输性质的关注开始。量子点触点(QPC)是一种结构(通常是金属的),其中只有几个原子直径宽(即,相当于传导电子的费米波长)的原子的“颈部”桥接两个电触点。它们可以通过使金属表面与扫描隧道显微镜(STM)接触并通过其他方法制备,并且通常显示以2e〜2 / h(〜13kΩ〜(-1))为单位量化的电导,其中e为电子电荷和h是普朗克常数。在这里,我们报告了用STM制备的金属QPC的电导测量值,我们可以使用超高真空电子显微镜同时对其进行成像,从而可以直接观察电子传输与结构之间的关系。我们观察到大约一纳米长的金原子链,并且一条金原子单链悬挂在电极之间。因此,我们可以验证原子单链的电导为2e〜2 / h,而双链的电导为两倍大,这表明在这些量子系统中电子迁移具有均分性。

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