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Probing carrier dynamics in nanostructures by picosecond cathodoluminescence

机译:通过皮秒阴极发光探测纳米结构中的载流子动力学

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Picosecond and femtosecond spectroscopy allow the detailed study of carrier dynamics in nanostructured materials. In such experiments, a laser pulse normally excites several nanostructures at once. However, spectroscopic information may also be acquired using pulses from an electron beam in a modern electron microscope, exploiting a phenomenon called cathodoluminescence. This approach offers several advantages. The multimode imaging capabilities of the electron microscope enable the correlation of optical properties (via cathodoluminescence) with surface morphology (secondary electron mode) at the nanometre scale. The broad energy range of the electrons can excite wide-bandgap materials, such as diamond- or gallium-nitride-based structures that are not easily excited by conventional optical means. But perhaps most intriguingly, the small beam can probe a single selected nanostructure. Here we apply an original time-resolved cathodoluminescence set-up to describe carrier dynamics within single gallium-arsenide-based pyramidal nanostructures with a time resolution of 10 picoseconds and a spatial resolution of 50 nanometres. The behaviour of such charge carriers could be useful for evaluating elementary components in quantum computers, optical quantum gates or single photon sources for quantum cryptography.
机译:皮秒和飞秒光谱技术可以对纳米结构材料中的载流子动力学进行详细研究。在这样的实验中,激光脉冲通常一次激发几个纳米结构。但是,在现代电子显微镜中,利用称为阴极发光的现象,也可以使用来自电子束的脉冲来获取光谱信息。这种方法具有几个优点。电子显微镜的多模成像功能可实现纳米级光学特性(通过阴极发光)与表面形态(二次电子模)的关联。电子的宽能范围可以激发宽带隙材料,例如基于金刚石或氮化镓的结构,这些材料不易通过常规光学手段激发。但也许最有趣的是,小光束可以探测单个选定的纳米结构。在这里,我们应用原始的时间分辨阴极发光设置来描述单个砷化镓基金字塔形纳米结构内的载流子动力学,其时间分辨率为10皮秒,空间分辨率为50纳米。此类电荷载流子的行为可用于评估量子计算机,光学量子门或用于量子密码术的单光子源中的基本成分。

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