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首页> 外文期刊>Science Advances >Pulling apart photoexcited electrons by photoinducing an in-plane surface electric field
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Pulling apart photoexcited electrons by photoinducing an in-plane surface electric field

机译:通过光诱导平面内电场将光激发电子分开

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The study and control of spatiotemporal dynamics of photocarriers at the interfaces of materials have led to transformative modern technologies, such as light-harvesting devices and photodetectors. At the heart of these technologies is the ability to separate oppositely charged electrons and holes. Going further, the ability to separate like charges and manipulate their distribution could provide a powerful new paradigm in opto-electronic control, more so when done on ultrafast time scales. However, this requires one to selectively address subpopulations of the photoexcited electrons within the distribution—a challenging task, particularly on ultrafast time scales. By exploiting the spatial intensity variations in an ultrafast light pulse, we generate local surface fields within the optical spot of a doped semiconductor and thereby pull apart the electrons into two separate distributions. Using time-resolved photoemission microscopy, we directly record a movie of this redistribution process lasting a few hundred picoseconds, which we control via the spatial profile and intensity of the photoexciting pulse. Our quantitative model explains the underlying charge transport phenomena, thus providing a roadmap to the more generalized ability to manipulate photocarrier distributions with high spatiotemporal resolution.
机译:对材料界面处光载流子的时空动力学的研究和控制导致了变革性的现代技术,例如光收集装置和光探测器。这些技术的核心是分离带相反电荷的电子和空穴的能力。进一步说,分离类似电荷并控制其分布的能力可以为光电控制提供强大的新范例,在超快速时标上更是如此。但是,这需要选择性地解决分布中光激发电子的亚群,这是一项艰巨的任务,尤其是在超快时标上。通过利用超快光脉冲中的空间强度变化,我们在掺杂半导体的光斑内生成局部表面场,从而将电子拉成两个单独的分布。使用时间分辨的光发射显微镜,我们直接记录了这种持续数百皮秒的重新分布过程的影片,我们可以通过光激发脉冲的空间分布和强度对其进行控制。我们的定量模型解释了潜在的电荷传输现象,从而为更广义的以高时空分辨率处理光电载子分布的能力提供了一个路线图。

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