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Laser-driven cold-field emission source for ultrafast transmission electron microscopy

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arxiv 2410.23961 v1 pith:2TELYWUK submitted 2024-10-31 physics.ins-det cond-mat.mes-hall

classification physics.ins-detcond-mat.mes-hall
keywords electronemitterlaser-drivenultrafastcoherencecold-fielddevelopmentdown
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abstract

Ultrafast transmission electron microscopy (UTEM) has emerged as a versatile technique for the time-resolved imaging of nanoscale dynamics on timescales down to few-hundred attoseconds but the temporal and spatial resolutions are still limited by the coherence properties of pulsed electron sources. Here, we report the development of a novel laser-driven linear cold-field electron emitter integrated in a state-of-the-art UTEM system. Illuminating the sharp tungsten emitter tip with a UV light pulse generates ultrashort femtosecond electron pulses of 220 fs pulse duration, with energy widths as low as 360 meV. The photoelectron emitter demonstrates exceptional spatial coherence, achieving focal spot sizes down to 2 $\mathring {\mathrm A}$ and a peak normalized brightness exceeding 6.7 $\times 10^{13}$ A/m$^2$sr. With an order-of-magnitude improvement compared to previously employed laser-driven Schottky field emitters, the present development opens up the field of ultrafast atomic-scale electron probing.

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  1. Femtosecond and attosecond phase-space correlations in few-particle photoelectron pulses

    cond-mat.mes-hall 2024-12 conditional novelty 7.0 of 10

    Number-resolved measurements reveal a bimodal phase-space distribution in two-electron pulses, and coherent laser modulation is predicted to create attosecond interparticle correlations exploitable for tailored excitations.

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