Weigner, T., Spielauer, T., Kolb, M., Boero, G., Rätzel, D., & Haslinger, P. (2025). Approaching Free-Electron – Bound-Electron Resonant Interactions with a Modulated Electron Beam. In Electron Beam Spectroscopy for Nanophotonics 2025 : Book of Abstracts (pp. 87–87). https://doi.org/10.34726/11540
E141-02 - Forschungsbereich Atom Physics and Quantum Optics E057-02 - Fachbereich Universitäre Serviceeinrichtung für Transmissions- Elektronenmikroskopie E136 - Institut für Theoretische Physik
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Published in:
Electron Beam Spectroscopy for Nanophotonics 2025 : Book of Abstracts
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Date (published):
2025
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Event name:
Electron Beam Spectroscopy for Nanophotonics 2025 (EBSN 2025)
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Event date:
29-Oct-2025 - 31-Oct-2025
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Event place:
Castelldefels, Spain
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Number of Pages:
1
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Keywords:
Modulated Electron Beam
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Abstract:
Quantum optics with free-electrons is a promising field emerging based on the technology of electron microscopy [1]. One part of the framework of free-electron quantum optics is the resonant and coherent interaction of free-electrons with bound-electron systems [2]. Experimental access to this interaction is particularly challenging, since the bound-electron state has to couple directly to the near-field of the free electrons. With our experimental setup we are aiming to show this interaction for the first time [3]. In this proof of principle experiment (see Fig. 1), we utilize a modulated free-space electron beam in a customized scanning electron microscope, to coherently drive electron spins. The near-field of this spatially modulated beam excites Zeeman levels in a α,γ-Bisdiphenylen-β-phenylally (BDPA) sample placed in a magnetic field. These quantum transitions couple inductively to a micro-coil. The signal in the micro-coil is measured with a lock-in amplifier, sensitive down to the thermal noise floor. A successful implementation of the proposed experiment will lay the foundation for coherently coupling modulated electron beams to bound-electron transitions. Realizing it in a electron microscope, allows to exploit the nano-scopic spatial resolution of electron microscopy. Apart from new spectroscopic methods utilizing the modulated near-field of an electron beam, higher order transitions may also be excited.
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Research facilities:
Universitäre Service-Einrichtung für Transmissionselektronenmikroskopie
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Project title:
Lattice Atom Interferometry: Y 1121 (FWF - Österr. Wissenschaftsfonds) Quantum Optics with Electron-Photon Pairs: P 36041-N (FWF - Österr. Wissenschaftsfonds) Quantum Klystron: P 35953 (FWF - Österr. Wissenschaftsfonds)
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Research Areas:
Quantum Metrology and Precision Measurements: 100%