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Observation of site-selective chemical bond changes via ultrafast chemical shifts.

Andre Al-HaddadSolène OberliJesús González-VázquezMaximilian BucherGilles DoumyPhay HoJacek KrzywinskiThomas J LaneAlberto A LutmanAgostino MarinelliTimothy J MaxwellStefan MoellerStephen T PrattDipanwita RayRon ShepardStephen H SouthworthÁlvaro Vázquez-MayagoitiaPeter WalterLinda YoungAntonio PicónChristoph Bostedt
Published in: Nature communications (2022)
The concomitant motion of electrons and nuclei on the femtosecond time scale marks the fate of chemical and biological processes. Here we demonstrate the ability to initiate and track the ultrafast electron rearrangement and chemical bond breaking site-specifically in real time for the carbon monoxide diatomic molecule. We employ a local resonant x-ray pump at the oxygen atom and probe the chemical shifts of the carbon core-electron binding energy. We observe charge redistribution accompanying core-excitation followed by Auger decay, eventually leading to dissociation and hole trapping at one site of the molecule. The presented technique is general in nature with sensitivity to chemical environment changes including transient electronic excited state dynamics. This work provides a route to investigate energy and charge transport processes in more complex systems by tracking selective chemical bond changes on their natural timescale.
Keyphrases
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