Self-probing spectroscopy of XUV photo-ionization dynamics in atoms subjected to a strong-field environment

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Abstract

Single-photon ionization is one of the most fundamental light matter interactions in nature, serving as a universal probe of the quantum state of matter. By probing the emitted electron, one can decode the full dynamics of the interaction. When photo-ionization is evolving in the presence of a strong laser field, the fundamental properties of the mechanism can be signicantly altered. Here we demonstrate how the liberated electron can perform a self-probing measurement of such interaction with attosecond precision. Extreme ultraviolet attosecond pulses initiate an electron wavepacket by photo-ionization, a strong infrared field controls its motion, and finally electron-ion collision maps it into re-emission of attosecond radiation bursts. Our measurements resolve the internal clock provided by the self-probing mechanism, obtaining a direct insight into the build-up of photo-ionization in the presence of the strong laser field.

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Azoury, D., Krüger, M., Orenstein, G., Larsson, H. R., Bauch, S., Bruner, B. D., & Dudovich, N. (2017). Self-probing spectroscopy of XUV photo-ionization dynamics in atoms subjected to a strong-field environment. Nature Communications , 8(1). https://doi.org/10.1038/s41467-017-01723-w

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