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Ultracold Electron Source for Single-Shot, Ultrafast Electron Diffraction

机译:用于单次,超快电子衍射的超冷电子源

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摘要

Ultrafast electron diffraction (UED) enables studies of structural dynamics at atomic length and timescales, i.e., 0.1 nm and 0.1 ps, in single-shot mode. At present UED experiments are based on femtosecond laser photoemission from solid state cathodes. These photoemission sources perform excellently, but are not sufficiently bright for single-shot studies of, for example, biomolecular samples. We propose a new type of electron source, based on near-threshold photoionization of a laser-cooled and trapped atomic gas. The electron temperature of these sources can be as low as 10 K, implying an increase in brightness by orders of magnitude. We investigate a setup consisting of an ultracold electron source and standard radio-frequency acceleration techniques by GPT tracking simulations. The simulations use realistic fields and include all pairwise Coulomb interactions. We show that in this setup 120 keV, 0.1 pC electron bunches can be produced with a longitudinal emittance sufficiently small for enabling sub-100 fs bunch lengths at 1% relative energy spread. A transverse root-mean-square normalized emittance of epsilon(x) = 10 nm is obtained, significantly better than from photoemission sources. Correlations in transverse phase-space indicate that the transverse emittance can be improved even further, enabling single-shot studies of biomolecular samples.
机译:超快电子衍射(UED)能够以单次模式研究原子长度和时标(即0.1 nm和0.1 ps)下的结构动力学。目前,UED实验基于固态阴极的飞秒激光光发射。这些光发射源具有出色的性能,但对于例如生物分子样品的单次研究却不够明亮。我们提出了一种新型的电子源,它基于激光冷却和捕获的原子气体的近阈光电离。这些源的电子温度可以低至10 K,这意味着亮度增加了几个数量级。我们通过GPT跟踪模拟研究了一种由超冷电子源和标准射频加速技术组成的装置。模拟使用逼真的场,并包括所有成对的库仑相互作用。我们表明,在这种设置中,在120 keV的电压下,可以产生0.1 pC的电子束,其纵向发射率足够小,可以在1%的相对能量扩散下实现低于100 fs的束长度。获得的epsilon(x)= 10 nm的横向均方根归一化发射比明显优于光发射源。横向相空间中的相关性表明,甚至可以进一步改善横向发射率,从而可以对生物分子样品进行单次研究。

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