论文标题

飞秒热和非热热电子隧道在光激发隧道连接处

Femtosecond Thermal and Nonthermal Hot Electron Tunneling inside a Photoexcited Tunnel Junction

论文作者

Sabanés, Natalia Martín, Krecinic, Faruk, Kumagai, Takashi, Schulz, Fabian, Wolf, Martin, Müller, Melanie

论文摘要

电子纳米版在超快速度上的有效运行需要了解和控制飞秒爆发产生的电流。金属纳米界面中超快速激光诱导的电流可能源自光辅助热电子隧道或灯波诱导的隧道。这两个过程均可驱动在Femto-temto-tos-Time量表上扫描隧道显微镜(STM)内的局部光电流,从而实现具有原子空间分辨率的超快STM。然而,金属纳米结的飞秒激光激发也导致形成瞬态的热电子分布,但是与电子效能电气平衡相比,在时间尺度上对热的热电子的隧穿并不能很好地理解。在这里,我们研究了超快电子加热和金属光激发隧道连接内部的瞬态热隧道及其在STM中超快光电产生中的作用。通过THZ场诱导的超快光电的调节对宽带Thz脉冲的相位分辨采样使我们能够探测STM尖端内部的电子温度演化,并因非热热和热热电子分布而实时观察瞬时和延迟隧道之间的竞争。我们的结果揭示了光诱导的热电子隧道的明显非热特征,并提供了对激光激光启用的隧道连接内热电子动力学的详细理解。

Efficient operation of electronic nanodevices at ultrafast speeds requires understanding and control of the currents generated by femtosecond bursts of light. Ultrafast laser-induced currents in metallic nanojunctions can originate from photo-assisted hot electron tunneling or lightwave-induced tunneling. Both processes can drive localized photocurrents inside a scanning tunneling microscope (STM) on femto- to attosecond time scales, enabling ultrafast STM with atomic spatial resolution. Femtosecond laser excitation of a metallic nanojunction, however, also leads to the formation of a transient thermalized electron distribution, but the tunneling of thermalized hot electrons on time scales faster than electron-lattice equilibration is not well understood. Here, we investigate ultrafast electronic heating and transient thermionic tunneling inside a metallic photoexcited tunnel junction and its role in the generation of ultrafast photocurrents in STM. Phase-resolved sampling of broadband THz pulses via the THz-field-induced modulation of ultrafast photocurrents allows us to probe the electronic temperature evolution inside the STM tip, and to observe the competition between instantaneous and delayed tunneling due to nonthermal and thermal hot electron distributions in real time. Our results reveal the pronounced nonthermal character of photo-induced hot electron tunneling, and provide a detailed microscopic understanding of hot electron dynamics inside a laser-excited tunnel junction.

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