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August 19, 2025The Journal of Physical Chemistry Letters4 citations

Attochemical Control of Nuclear Motion despite Fast Electronic Decoherence

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LFLina FransénSGSandra GómezMVMorgane Vacher

Key Points

  • Short-lived electronic coherences induce vibrational coherences lasting at least 50 fs, affecting nuclear motion.
  • Predicted half-lives of electronic coherences are under 1 fs, indicating their fleeting nature.
  • Full-dimensional quantum dynamics simulations were conducted on ionized ethylene to assess electron-nuclear coupling.
  • These findings may enhance understanding of attosecond experiments and strategies for manipulation in attochemistry.

Abstract

Short-in-time, broad-in-energy attosecond or few-femtosecond pulses can excite coherent superpositions of several electronic states in molecules. This results in ultrafast charge oscillations known as charge migration. A key open question in the emerging field of attochemistry is whether these electron dynamics, which due to decoherence often last only for a few femtoseconds, can influence longer-time scale nuclear rearrangements. Herein, we address this question through full-dimensional quantum dynamics simulations of the coupled electron-nuclear dynamics initiated by ionization and coherent excitation of ethylene. The simulations of this prototype organic chromophore predict electronic coherences with half-lives of less than 1 fs. Despite their brevity, these electronic coherences induce vibrational coherences along the derivative coupling vectors that persist for at least 50 fs. These results suggest that short-lived electronic coherences can impart long-lasting legacies on nuclear motion, a finding of potential importance to the interpretation of attosecond experiments and the development of strategies for attochemical control.

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Cite This Study

Fransén et al. (2025) studied this question.

synapsesocial.com/papers/68af4760ad7bf08b1ead458chttps://doi.org/10.1021/acs.jpclett.5c01895
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