Entanglement and electronic coherence in attosecond molecular photoionization.

Koll, L-M; Suñer-Rubio, A J; Witting, T; Bello, R Y; Palacios, A; Martín, F; Vrakking, M J J · Nature · 2026

basic_science · Level V

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Abstract

Electronic coherences resulting from molecular photoionization underlie the process of attosecond charge migration, widely investigated as a possible path towards controlled charge-directed reactivity<sup>1-4</sup>. However, photoionization often creates entangled ions and photoelectrons. This entanglement compromises the ability to explore coherent ultrafast electron dynamics within ions or of their accompanying photoelectrons<sup>5-8</sup>. Here we present experiments and calculations in which hydrogen molecules are ionized by the combination of a phase-locked pair of isolated attosecond laser pulses and a few-cycle near-infrared (NIR) laser pulse. The electronic coherence in the dissociating H<sub>2</sub><sup>+</sup> ion is influenced by ion-photoelectron entanglement. We demonstrate experimental control over the degree of entanglement by varying the delay between the two attosecond pulses and the delay between these pulses and the few-cycle NIR pulse. Our work demonstrates the importance of proper consideration of the role of quantum entanglement for the optimal observation of electronic coherences in attosecond experiments.