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扫描隧道显微镜结内超宽带太赫兹脉冲的相位分辨检测

Phase-Resolved Detection of Ultrabroadband THz Pulses inside a Scanning Tunneling Microscope Junction.

作者信息

Müller Melanie, Martín Sabanés Natalia, Kampfrath Tobias, Wolf Martin

机构信息

Department of Physical Chemistry, Fritz Haber Institute of the Max Planck Society, Faradayweg 4-6, 14195 Berlin, Germany.

Department of Physics, Freie Universität Berlin, Arnimallee 14, 14195 Berlin, Germany.

出版信息

ACS Photonics. 2020 Aug 19;7(8):2046-2055. doi: 10.1021/acsphotonics.0c00386. Epub 2020 Jul 8.

Abstract

Coupling phase-stable single-cycle terahertz (THz) pulses to scanning tunneling microscope (STM) junctions enables spatiotemporal imaging with femtosecond temporal and Ångstrom spatial resolution. The time resolution achieved in such THz-gated STM is ultimately limited by the subcycle temporal variation of the tip-enhanced THz field acting as an ultrafast voltage pulse, and hence by the ability to feed high-frequency, broadband THz pulses into the junction. Here, we report on the coupling of ultrabroadband (1-30 THz) single-cycle THz pulses from a spintronic THz emitter (STE) into a metallic STM junction. We demonstrate broadband phase-resolved detection of the THz voltage transient directly in the STM junction via THz-field-induced modulation of ultrafast photocurrents. Comparison to the unperturbed far-field THz waveform reveals the antenna response of the STM tip. Despite tip-induced low-pass filtering, frequencies up to 15 THz can be detected in the tip-enhanced near-field, resulting in THz transients with a half-cycle period of 115 fs. We further demonstrate simple polarity control of the THz bias via the STE magnetization and show that up to 2 V THz bias at 1 MHz repetition rate can be achieved in the current setup. Finally, we find a nearly constant THz voltage and waveform over a wide range of tip-sample distances, which by comparison to numerical simulations confirms the quasi-static nature of the THz pulses. Our results demonstrate the suitability of spintronic THz emitters for ultrafast THz-STM with unprecedented bandwidth of the THz bias and provide insight into the femtosecond response of defined nanoscale junctions.

摘要

将相位稳定的单周期太赫兹(THz)脉冲与扫描隧道显微镜(STM)结耦合,能够实现具有飞秒时间分辨率和埃空间分辨率的时空成像。在这种太赫兹门控STM中实现的时间分辨率最终受限于作为超快电压脉冲的尖端增强太赫兹场的亚周期时间变化,因此也受限于将高频、宽带太赫兹脉冲馈入结的能力。在此,我们报告了将来自自旋电子太赫兹发射器(STE)的超宽带(1 - 30 THz)单周期太赫兹脉冲耦合到金属STM结中。我们通过太赫兹场诱导的超快光电流调制,在STM结中直接演示了太赫兹电压瞬变的宽带相位分辨检测。与未受干扰的远场太赫兹波形的比较揭示了STM尖端的天线响应。尽管尖端会引起低通滤波,但在尖端增强的近场中仍可检测到高达15 THz的频率,从而产生半周期为115 fs的太赫兹瞬变。我们进一步演示了通过STE磁化对太赫兹偏置进行简单的极性控制,并表明在当前设置下,以1 MHz的重复频率可实现高达2 V的太赫兹偏置。最后,我们发现在很宽的尖端 - 样品距离范围内,太赫兹电压和波形几乎恒定,与数值模拟相比,这证实了太赫兹脉冲的准静态性质。我们的结果证明了自旋电子太赫兹发射器适用于具有前所未有的太赫兹偏置带宽的超快太赫兹 - STM,并为定义的纳米级结的飞秒响应提供了深入了解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ec9/7441495/359381743c9f/ph0c00386_0001.jpg

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