论文标题

扫描隧道显微镜结局内的超生殖带Thz脉冲的相位分辨检测

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

论文作者

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

论文摘要

耦合相稳定的单周terahertz(THZ)脉冲扫描隧道显微镜(STM)连接可以使时空成像具有时空成像,并具有飞秒的时间和Ångstrom空间分辨率。在这种THZ门控的STM中实现的时间分辨率最终受到尖端增强的THZ场的亚周期时间变化的限制,因此充当超快电压脉冲,因此,宽带THZ脉冲供应高频脉冲。在这里,我们报告了从自旋THZ发射极(Ste)进入金属STM交界处的Ultravandband(1-30 THz)单周期脉冲的耦合。我们通过THZ Field诱导的超快光电流调制了THZ电压瞬变的宽带相位分辨的检测。与未扰动的远场THZ波形的比较揭示了STM尖端的天线响应。尽管尖端引起的低通滤波,但在尖端增强的近场中仍可以检测到高达15 THz的频率,从而导致THZ瞬变,半周期为115 fs。我们进一步证明了通过Ste磁化对THZ偏置的简单极性控制,并证明在当前设置中可以以1 MHz重复速率以1 MHz的重复率达到2 V Thz偏置。最后,我们在较大的尖端样本距离上发现了几乎恒定的THZ电压和波形,与数值模拟相比,这证实了THZ脉冲的准静态性质。我们的结果表明,Spintronic Thz发射器对于具有前所未有的THZ偏置带宽的超快THZ-STM的适用性,并提供了对定义的纳米级连接的飞秒响应的洞察力。

Coupling phase-stable single-cycle terahertz (THz) pulses to scanning tunneling microscope (STM) junctions enables spatio-temporal imaging with femtosecond temporal and Ångstrom spatial resolution. The time resolution achieved in such THz-gated STM is ultimately limited by the sub-cycle 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.

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