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Sensing the quantum limit in scanning tunnelling spectroscopy

机译:在扫描隧道光谱学中感知量子极限

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摘要

The tunnelling current in scanning tunnelling spectroscopy (STS) is typically and often implicitly modelled by a continuous and homogeneous charge flow. If the charging energy of a single-charge quantum sufficiently exceeds the thermal energy, however, the granularity of the current becomes non-negligible. In this quantum limit, the capacitance of the tunnel junction mediates an interaction of the tunnelling electrons with the surrounding electromagnetic environment and becomes a source of noise itself, which cannot be neglected in STS. Using a scanning tunnelling microscope operating at 15 mK, we show that we operate in this quantum limit, which determines the ultimate energy resolution in STS. The P(E)-theory describes the probability for a tunnelling electron to exchange energy with the environment and can be regarded as the energy resolution function. We experimentally demonstrate this effect with a superconducting aluminium tip and a superconducting aluminium sample, where it is most pronounced.
机译:扫描隧道光谱法(STS)中的隧道电流通常且通常通过连续且均匀的电荷流隐式建模。然而,如果单电荷量子的充电能量充分超过热能,则电流的粒度变得不可忽略。在此量子极限下,隧道结的电容介导了隧道电子与周围电磁环境的相互作用,并成为噪声源,这在STS中是不能忽略的。使用在15 mK下运行的扫描隧道显微镜,我们证明我们在此量子极限下运行,这决定了STS的最终能量分辨率。 P(E)理论描述了隧穿电子与环境交换能量的概率,可以被视为能量分辨函数。我们用超导铝制尖端和超导铝制样品实验证明了这种效果,其中最明显。

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