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飞秒电子探测纳米材料中的电流和原子结构。

Femtosecond electrons probing currents and atomic structure in nanomaterials.

机构信息

Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, D-14195 Berlin, Germany.

出版信息

Nat Commun. 2014 Oct 31;5:5292. doi: 10.1038/ncomms6292.

Abstract

The investigation of ultrafast electronic and structural dynamics in low-dimensional systems such as nanowires and two-dimensional materials requires femtosecond probes providing high spatial resolution and strong interaction with small volume samples. Low-energy electrons exhibit large scattering cross-sections and high sensitivity to electric fields, but their pronounced dispersion during propagation in vacuum so far prevented their use as femtosecond probe pulses in time-resolved experiments. Here, employing a laser-triggered point-like source of either divergent or collimated electron wave packets, we developed a hybrid approach for femtosecond point projection microscopy and femtosecond low-energy electron diffraction. We investigate ultrafast electric currents in nanowires with sub-100 femtosecond temporal and few 10 nm spatial resolutions, and demonstrate the potential of our approach for studying structural dynamics in crystalline single-layer materials.

摘要

在低维系统(如纳米线和二维材料)中研究超快电子和结构动力学,需要飞秒探针提供高空间分辨率和与小体积样品的强相互作用。低能电子具有较大的散射截面和对电场的高灵敏度,但在真空中传播时会发生明显的色散,这使得它们无法在时间分辨实验中用作飞秒探针脉冲。在这里,我们采用激光触发的发散或准直电子波包点状源,开发了一种用于飞秒点投影显微镜和飞秒低能电子衍射的混合方法。我们以小于 100 飞秒的时间分辨率和小于 10nm 的空间分辨率研究了纳米线中的超快电流,并展示了我们的方法在研究单晶层材料结构动力学方面的潜力。

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