Ultrafast imaging of spontaneous symmetry breaking in a photoionized molecular system.
basic_science · Level V
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- Record sourced from PubMed, PMID 34244485.
- Also identified by DOI 10.1038/s41467-021-24309-z and PMC identifier 8270947.
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Abstract
The Jahn-Teller effect is an essential mechanism of spontaneous symmetry breaking in molecular and solid state systems, and has far-reaching consequences in many fields. Up to now, to directly image the onset of Jahn-Teller symmetry breaking remains unreached. Here we employ ultrafast ion-coincidence Coulomb explosion imaging with sub-10 fs resolution and unambiguously image the ultrafast dynamics of Jahn-Teller deformations of [Formula: see text] cation in symmetry space. It is unraveled that the Jahn-Teller deformation from C<sub>3v</sub> to C<sub>2v</sub> geometries takes a characteristic time of 20 ± 7 fs for this system. Classical and quantum molecular dynamics simulations agree well with the measurement, and reveal dynamics for the build-up of the C<sub>2v</sub> structure involving complex revival process of multiple vibrational pathways of the [Formula: see text] cation.