The interaction of strong laser fields with matter intrinsically provides a powerful tool for imaging transient dynamics with an extremely high spatiotemporal resolution. Here, we study strong-field ionisation of laser-aligned molecules, and show a full real-time picture of the photoelectron dynamics in the combined action of the laser field and the molecular interaction. We demonstrate that the molecule has a dramatic impact on the overall strong-field dynamics: it sets the clock for the emission of electrons with a given rescattering kinetic energy. This result represents a benchmark for the seminal statements of molecular-frame strong-field physics and has strong impact on the interpretation of self-diffraction experiments. Furthermore, the resulting encoding of the time-energy relation in molecular-frame photoelectron momentum distributions shows the way of probing the molecular potential in real-time, and accessing a deeper understanding of electron transport during strong-field interactions.

Trabattoni A., Wiese J., De Giovannini U., Olivieri J.-F., Mullins T., Onvlee J., et al. (2020). Setting the photoelectron clock through molecular alignment. NATURE COMMUNICATIONS, 11(1), 2546 [10.1038/s41467-020-16270-0].

Setting the photoelectron clock through molecular alignment

De Giovannini U.;Frusteri B.;
2020-12-01

Abstract

The interaction of strong laser fields with matter intrinsically provides a powerful tool for imaging transient dynamics with an extremely high spatiotemporal resolution. Here, we study strong-field ionisation of laser-aligned molecules, and show a full real-time picture of the photoelectron dynamics in the combined action of the laser field and the molecular interaction. We demonstrate that the molecule has a dramatic impact on the overall strong-field dynamics: it sets the clock for the emission of electrons with a given rescattering kinetic energy. This result represents a benchmark for the seminal statements of molecular-frame strong-field physics and has strong impact on the interpretation of self-diffraction experiments. Furthermore, the resulting encoding of the time-energy relation in molecular-frame photoelectron momentum distributions shows the way of probing the molecular potential in real-time, and accessing a deeper understanding of electron transport during strong-field interactions.
dic-2020
Trabattoni A., Wiese J., De Giovannini U., Olivieri J.-F., Mullins T., Onvlee J., et al. (2020). Setting the photoelectron clock through molecular alignment. NATURE COMMUNICATIONS, 11(1), 2546 [10.1038/s41467-020-16270-0].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10447/543131
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