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Probing Quantum Optical Excitations with Fast Electrons

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arxiv 1905.06887 v4 pith:IM4W2TPF submitted 2019-05-16 quant-ph

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keywords opticalelectronexcitationselectronsresolutionfastprobingquantum
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Probing optical excitations with nanometer resolution is important for understanding their dynamics and interactions down to the atomic scale. Electron microscopes currently offer the unparalleled ability of rendering spatially-resolved electron spectra with combined meV and sub-nm resolution, while the use of ultrafast optical pulses enables fs temporal resolution and exposure of the electrons to ultraintense confined optical fields. Here, we theoretically investigate fundamental aspects of the interaction of fast electrons with localized optical modes that are made possible by these advances. We use a quantum-optics description of the optical field to predict that the resulting electron spectra strongly depend on the statistics of the sample excitations (bosonic or fermionic) and their population (Fock, coherent, or thermal), whose autocorrelation functions are directly retrieved from the ratios of electron gain intensities. We further explore feasible experimental scenarios to probe the quantum characteristics of the sampled excitations and their populations.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Observation of the Stimulated Quantum Cherenkov Effect

    physics.optics 2019-09 conditional novelty 8.0 of 10

    Phase-matching a relativistic electron wavefunction to an evanescent light wave over hundreds of microns produces a quantized energy comb, the first observation of the stimulated quantum Cherenkov effect.

  2. Coherent interaction between free electrons and a photonic cavity

    physics.optics 2019-08 conditional novelty 7.0 of 10

    Free electrons were shown to interact coherently with photons trapped in a photonic crystal cavity, enabling measurement of the cavity photon lifetime and an order-of-magnitude interaction enhancement over metal films.

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