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Measuring the quantum state of photoelectrons

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arxiv 2309.13945 v1 pith:3CFKKXN4 submitted 2023-09-25 quant-ph

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keywords quantumphotoelectronstateabsorptionargonemittedheliumlight
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A photoelectron, emitted due to the absorption of light quanta as described by the photoelectric effect, is often characterized experimentally by a classical quantity, its momentum. However, since the photoelectron is a quantum object, its rigorous characterization requires the reconstruction of the complete quantum state, the photoelectron's density matrix. Here, we use quantum state tomography to fully characterize photoelectrons emitted from helium and argon atoms upon absorption of ultrashort, extreme ultraviolet light pulses. While in helium we measure a pure photoelectronic state, in argon, spin-orbit interaction induces entanglement between the ion and the photoelectron, leading to a reduced purity of the photoelectron state. Our work shows how state tomography gives new insights into the fundamental quantum aspects of light-induced electronic processes in matter, bridging the fields of photoelectron spectroscopy and quantum information, and offering new spectroscopic possibilities for quantum technology.

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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. Reduced density matrix description of high-harmonic generation in multi-electron atoms: exploring sub-cycle correlation effects

    physics.atom-ph 2025-09 conditional novelty 6.0 of 10

    Opposite sub-cycle correlation dynamics appear in noble-gas versus alkaline-earth atoms, and the correlation-driven evolution of natural orbitals, rather than occupation numbers, dominates the HHG spectrum.

  2. Testing Born's rule via photoionization of helium

    quant-ph 2025-01 conditional novelty 6.0 of 10

    Ultra-fast laser photoionization of helium could test Born's rule with a precision around 10^-3, according to a Monte Carlo simulation of a three-path interferometer.

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