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The mechanism of light emission from a scanning tunnelling microscope operating in air

机译:在空气中运行的扫描隧道显微镜的发光机理

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摘要

The scanning tunnelling microscope (STM) may be used as a low-energy, electrical nanosource of surface plasmon polaritons and light. In this article, we demonstrate that the optimum mode of operation of the STM for maximum photon emission is completely different in air than in vacuum. To this end, we investigate the emission of photons, the variation in the relative tip-sample distance and the measured current as a function of time for an STM operating in air. Contrary to the case of an STM operating in vacuum, the measured current between the tip and sample for an STM in air is very unstable (rapidly fluctuating in time) when the applied voltage between the tip and sample is in the similar to 1.5-3 V range (i.e., in the energy range of visible photons). The photon emission occurs in short (50 mu s) bursts when the STM tip is closest to the sample. The current instabilities are shown to be a key ingredient for producing intense light emission from an STM operating in air (photon emission rate several orders of magnitude higher than for stable current). These results are explained in terms of the interplay between the tunnel current and the electrochemical current in the ubiquitous thin water layer that exists when working in air.
机译:扫描隧道显微镜(STM)可用作表面等离振子极化子和光的低能纳米电源。在本文中,我们证明了STM的最大光子发射最佳操作模式在空气中与在真空中完全不同。为此,对于空气中运行的STM,我们研究了光子的发射,相对尖端样品距离的变化以及所测量的电流随时间的变化。与STM在真空中操作的情况相反,当在STM和吸头之间施加的电压大约为1.5-3时,在空气中STM测得的吸头和样品之间的电流非常不稳定(时间会迅速波动) V范围(即,在可见光子的能量范围内)。当STM尖端最接近样品时,光子发射会在短时间内(50μs)爆发。电流不稳定性被证明是在空气中运行的STM产生强光发射的关键因素(光子发射速率比稳定电流高几个数量级)。根据在空气中工作时存在的普遍存在的稀薄水层中的隧道电流和电化学电流之间的相互作用来解释这些结果。

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