论文标题

开发可变温度电子自旋共振的扫描隧道显微镜

Development of a Scanning Tunneling Microscope for Variable Temperature Electron Spin Resonance

论文作者

Hwang, Jiyoon, Krylov, Denis, Elbertse, Robertus J. G., Yoon, Sangwon, Ahn, Taehong, Oh, Jeongmin, Fang, Lei, Jang, Won-jun, Cho, Franklin H., Heinrich, Andreas J., Bae, Yujeong

论文摘要

通过将电子旋转共振(ESR)与STM相结合,可以在扫描隧道显微镜(STM)中增加光谱能量分辨率(STM)的最新进展。在这里,我们演示了在1 K到10 K的温度下能够在1 K到10 K的温度下进行的自制STM的设计和性能。STM与自制的Joule-Thomson冰箱和2轴矢量磁体合并。我们的STM设计允许将原子和分子直接沉积到冷STM中,从而消除了提取样品沉积的需求。此外,我们采用两种方法将射频(RF)电压应用于隧道连接处,直接将接线的早期设计到STM尖端,以及使用RF天线的最新想法。使用两种方法和隧道连接周围电场分布的模拟测量的ESR结果的直接比较表明,尽管它们的设计与隧道结的不同设计和电容耦合不同,但ESR的驾驶和检测却没有明显的差异。此外,在1.6 T的磁场上,我们观察到ESR信号(接近40 GHz)的维持量高达10 K,这是迄今为止迄今为止报告的ESR-STM测量温度最高的温度,据我们所知。尽管ESR强度随温度的升高而呈指数降低,但我们的ESR-STM系统在隧道连接处低噪声,使我们能够测量具有低FA范围内强度的弱ESR信号。我们对ESR-STM的新设计,该设计在较大的频率和温度范围内运行,可以扩大STM中ESR光谱的使用,并可以简单地修改现有STM系统,这将有望加速ESR-STM的广义使用。

Recent advances in increasing the spectroscopic energy resolution in scanning tunneling microscopy (STM) have been achieved by integrating electron spin resonance (ESR) with STM. Here, we demonstrate the design and performance of a home-built STM capable of ESR at temperatures ranging from 1 K to 10 K. The STM is incorporated with a home-built Joule-Thomson refrigerator and a 2-axis vector magnet. Our STM design allows for the deposition of atoms and molecules directly into the cold STM, eliminating the need to extract the sample for deposition. In addition, we adopt two methods to apply radio-frequency (RF) voltages to the tunnel junction, the early design of wiring to the STM tip directly, and a more recent idea to use an RF antenna. Direct comparisons of ESR results measured using the two methods and simulations of electric field distribution around the tunnel junction show that, despite their different designs and capacitive couplings to the tunnel junction, there is no discernible difference in the driving and detection of ESR. Furthermore, at a magnetic field of 1.6 T, we observe ESR signals (near 40 GHz) sustained up to 10 K, which is the highest temperature for ESR-STM measurement reported to date, to the best of our knowledge. Although the ESR intensity exponentially decreases with increasing temperature, our ESR-STM system with low noise at the tunnel junction allows us to measure weak ESR signals with intensities in the sub-fA range. Our new design of ESR-STM, which is operational in a large frequency and temperature range, can broaden the use of ESR spectroscopy in STM and enable the simple modification of existing STM systems, which will hopefully accelerate a generalized use of ESR-STM.

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