论文标题

半导体中纳米级电荷动力学的超快电子显微镜

Ultrafast Electron Microscopy of Nanoscale Charge Dynamics in Semiconductors

论文作者

Yannai, Michael, Dahan, Raphael, Gorlach, Alexey, Adiv, Yuval, Wang, Kangpeng, Madan, Ivan, Gargiulo, Simone, Barantani, Francesco, Dias, Eduardo J. C., Vanacore, Giovanni Maria, Rivera, Nicholas, Carbone, Fabrizio, de Abajo, F. Javier García, Kaminer, Ido

论文摘要

固体中电荷载体的超快动力学在新兴的光电子,光子学,能量收集和量子技术应用中起关键作用。然而,由于纳米 - 前时代时空的尺度,这种非平衡转运现象的研究和直接可视化仍然是一个长期的挑战。在这里,我们提出并展示了一种新型的相互作用机制,可实现固体中电荷载体飞秒动力学的纳米级成像。我们将这种成像方式(我们称为电荷动力学电子显微镜(CDEM))利用了Terahertz(Thz)电磁之间的强烈相互作用,该电磁近距离移动电荷和同步的超快扫描透射电子显微镜中的电荷和同步的自由电子脉冲产生。测得的自由电子能在不同时空坐标处,使我们能够直接检索THZ近场幅度和相位,通过与微观理论相比,我们从中重建了生成的电荷的电影。因此,引入的CDEM技术使我们能够研究固体中电荷动力学的先前无法访问的时空状态,例如揭示对光照射效应的新见解,显示了半导体内光生成的电子孔分布的振荡。我们的工作奠定了探索使用Ultrafast电子显微镜在凝结物质中探索各种以前无法访问的电荷传输现象的基础。

The ultrafast dynamics of charge carriers in solids plays a pivotal role in emerging optoelectronics, photonics, energy harvesting, and quantum technology applications. However, the investigation and direct visualization of such non-equilibrium transport phenomena remains as a long-standing challenge, owing to the nanometer-femtosecond spatio-temporal scales at which the charge carriers evolve. Here, we propose and demonstrate a novel interaction mechanism enabling nanoscale imaging of the femtosecond dynamics of charge carriers in solids. This imaging modality, which we name charge dynamics electron microscopy (CDEM), exploits the strong interaction between terahertz (THz) electromagnetic near fields produced by the moving charges and synchronized free-electron pulses in an ultrafast scanning transmission electron microscope. The measured free-electron energy at different spatio-temporal coordinates allows us to directly retrieve the THz near-field amplitude and phase, from which we reconstruct movies of the generated charges by comparison with microscopic theory. The introduced CDEM technique thus allows us to investigate previously inaccessible spatio-temporal regimes of charge dynamics in solids, for example revealing new insight into the photo-Dember effect, showing oscillations of photo-generated electron-hole distributions inside a semiconductor. Our work lays the foundation for exploring a wide range of previously inaccessible charge-transport phenomena in condensed matter using ultrafast electron microscopy.

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