Publication | Closed Access
Interpreting closed-loop learning control of molecular fragmentation in terms of wave-packet dynamics and enhanced molecular ionization
50
Citations
37
References
2005
Year
EngineeringMolecular BiologyComputational ChemistryChemistryMolecular DynamicsEnhanced Molecular IonizationMolecular ComputingMolecular DesignMolecular SpectroscopyBiophysicsPhysicsMolecular IonizationPhysical ChemistryQuantum ChemistryMolecular Fragmentation ExperimentWave-packet DynamicsLaser PhotochemistryNatural SciencesUltrafast Laser PulsesLaser-induced BreakdownMolecular FragmentationComputational Biophysics
We interpret a molecular fragmentation experiment using shaped, ultrafast laser pulses in terms of enhanced molecular ionization during dissociation. A closed-loop learning control experiment was performed to maximize the CF3+CH3+ production ratio in the dissociative ionization of CH3COCF3. Using ab inito molecular structure calculations and quasistatic molecular ionization calculations along with data from pump-probe experiments, we identify the primary control mechanism which is quite general and should be applicable to a broad class of molecules.
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