室温金真空金隧道实验。

E Clayton Teague
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引用次数: 42

摘要

已经完成了一个实验,证明了电子在真空中分离的两个金电极之间的量子机械隧穿。对于0.1和0.01伏的固定电压,已经测量了金电极之间的隧穿电流,因为电极间距从大约2.0nm的距离向下变化到电极接触的点。对于大约1.2nm的电极间距变化,发现超过五个数量级的电流变化。这些数据首次使人们能够从独立于隧道器件的实验参数中推导出隧道实验中电极的功函数。还获得了在电极间距小于2.0nm的直接隧穿区中固定电极间距的电流-电压特性。给出了一种分析,试图从I-V数据和电流与间距数据的非线性特性推导出绝对电极间距和隧穿面积。分析表明,范德华和静电力在决定I-V特性方面起着主要作用,隧道面积可能小至10-16m2。在回顾功函数和量子力学隧穿理论的同时,基于电极和势垒的自由电子模型、图像电位降低势垒和隧穿概率的WKB近似,对隧穿电流进行了数值计算,并与Simmons的理论和实验结果进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Room Temperature Gold-Vacuum-Gold Tunneling Experiments.

An experiment has been completed which demonstrated quantum mechanical tunneling of electrons between two gold electrodes separated in vacuum. The tunneling current between the gold electrodes has been measured, for fixed voltages of 0.1 and 0.01 volts, as the electrode spacing was varied from a distance of approximately 2.0 nm down to a point where the electrodes touched. Current changes of over five orders of magnitude were found for electrode spacing changes of approximately 1.2 nm. For the first time, these data enable one to deduce the work function of the electrodes in a tunneling experiment from experimental parameters independent of the tunneling device. Also obtained were current-voltage characteristics for fixed electrode spacings in the direct tunneling region where electrode spacings were less than 2.0 nm. An analysis is given which attempts to deduce an absolute electrode spacing and tunneling area from the nonlinear properties of the I-V data and the current versus spacing data. The analysis suggests that van der Waals and electrostatic forces play a major role in determining the I-V characteristics and that the tunneling area may be as small as 10-16 m2. Along with a review of the theory of work functions and quantum mechanical tunneling, numerical calculations of the tunneling current based on the free-electron model of the electrodes and the barrier, an image-potential reduced barrier, and a WKB approximation for the tunneling probability have been performed and compared with Simmons' theory and with the experimental results.

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