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Nanostructured Ultrafast Silicon-Tip Optical Field-Emitter Arrays

机译:纳米结构的超快硅尖光场发射器阵列

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摘要

Femtosecond ultrabright electron sources with spatially structured emission are an enabling technology for free-electron lasers, compact coherent X-ray sources, electron diffractive imaging, and attosecond science. In this work, we report the design, modeling, fabrication, and experimental characterization of a novel ultrafast optical field emission cathode comprised of a large (>100 000 tips), dense (4.6 million tips·cm~(?2)), and highly uniform (<1 nm tip radius deviation) array of nanosharp high-aspect-ratio silicon columns. Such field emitters offer an attractive alternative to UV photocathodes while providing a direct means of structuring the emitted electron beam. Detailed measurements and simulations show pC electron bunches can be generated in the multiphoton and tunneling regime within a single optical cycle, enabling significant advances in electron diffractive imaging and coherent X-ray sources on a subfemtosecond time scale, not possible before. At high charge emission yields, a slow rollover in charge is explained as a combination of the onset of tunneling emission and the formation of a virtual cathode.
机译:具有空间结构发射的飞秒超高亮电子源是使自由电子激光器,紧凑型相干X射线源,电子衍射成像和阿秒科学成为可能的技术。在这项工作中,我们报告了一种新型的超快光场发射阴极的设计,建模,制造和实验表征,该阴极由大的(> 100 000尖端),致密的(460万的尖端·cm〜(?2))和纳米锐化高纵横比硅柱的高度均匀(<1 nm尖端半径偏差)阵列。这种场发射器提供了一种有吸引力的紫外线光电阴极的替代品,同时提供了一种结构化发射电子束的直接方法。详细的测量和模拟显示,可以在单个光周期内在多光子和隧穿机制中生成pC电子束,从而使电子衍射成像和相干X射线源取得了飞秒级的显着进步,这在以前是不可能的。在高电荷发射率的情况下,缓慢的电荷翻转被解释为隧道发射的开始和虚拟阴极的形成的结合。

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