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Time-of-flight electron energy loss spectroscopy by longitudinal phase space manipulation with microwave cavities

机译:通过微波腔的纵向相空间控制飞行时间的电子能量损失谱

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摘要

The possibility to perform high-resolution time-resolved electron energy loss spectroscopy has the potential to impact a broad range of research fields. Resolving small energy losses with ultrashort electron pulses, however, is an enormous challenge due to the low average brightness of a pulsed beam. In this paper, we propose to use time-of-flight measurements combined with longitudinal phase space manipulation using resonant microwave cavities. This allows for both an accurate detection of energy losses with a high current throughput and efficient monochromation. First, a proof-of-principle experiment is presented, showing that with the incorporation of a compression cavity the flight time resolution can be improved significantly. Then, it is shown through simulations that by adding a cavity-based monochromation technique, a full-width-at-half-maximum energy resolution of 22 meV can be achieved with 3.1 ps pulses at a beam energy of 30 keV with currently available technology. By combining state-of-the-art energy resolutions with a pulsed electron beam, the technique proposed here opens up the way to detecting short-lived excitations within the regime of highly collective physics.
机译:执行高分辨率的时间分辨电子能量损失谱的可能性可能会影响广泛的研究领域。然而,由于脉冲束的平均亮度低,解决超短电子脉冲的微小能量损失是巨大的挑战。在本文中,我们建议将飞行时间测量与利用共振微波腔的纵向相空间操纵相结合。这样既可以通过高电流通过量准确地检测能量损失,又可以实现高效的单色化。首先,提出了一项原理验证实验,表明通过合并压缩腔,可以显着提高飞行时间分辨率。然后,通过仿真显示,通过添加基于腔的单色技术,使用目前可用的技术,在束能量为30 keV的情况下,以3.1 ps脉冲可以实现半峰全宽最大能量分辨率为22 meV 。通过将最新的能量分辨率与脉冲电子束相结合,此处提出的技术为在高度集中的物理范围内检测短寿命激发的方式开辟了道路。

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