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Atomic versus molecular Auger decay in CH2Cl2 and CD2Cl2 molecules.
A C F Santos1, D N Vasconcelos1, M A MacDonald2
1Instituto de Física, Universidade Federal do Rio de Janeiro, 21941-972 Rio de Janeiro, RJ, Brazil.
Investigating dichloromethane (CH2Cl2) autoionization spectra reveals distinct molecular and atomic Auger transitions. Deuteration slightly reduces atomic Auger contributions, supporting ultrafast dissociation mechanisms.
Area of Science:
- Atomic and Molecular Physics
- Quantum Chemistry
- Spectroscopy
Background:
- Autoionization processes are crucial for understanding molecular electronic structure and dynamics.
- Chlorine 2p excitation provides a specific probe for studying electronic transitions in halogenated molecules.
- Dichloromethane (CH2Cl2) is a relevant molecule for studying dissociation mechanisms.
Purpose of the Study:
- To analyze the autoionization spectra of CH2Cl2 and its deuterated analog (CD2Cl2) following Cl 2p excitation.
- To assign molecular and atomic Auger transitions and investigate the effect of deuteration.
- To computationally support the ultrafast dissociation mechanism in dichloromethane.
Main Methods:
- Experimental study of autoionization spectra using Cl 2p excitation.
- Assignment of molecular and atomic Auger transitions.
- High-level ab initio quantum mechanical calculations (MCSCF, MRCI).
- Calculation of minimum energy pathways for dissociation, including spin-orbit splitting.
Main Results:
- Observed and assigned distinct molecular and atomic Auger transitions in CH2Cl2 and CD2Cl2.
- Found a reduced contribution of atomic Auger transitions in the deuterated molecule (CD2Cl2).
- Computational results support the presence of an ultrafast dissociation mechanism in dichloromethane.
Conclusions:
- Deuteration influences the contribution of atomic Auger transitions in dichloromethane.
- The study provides strong evidence for ultrafast dissociation pathways in dichloromethane.
- Combined experimental and theoretical approaches offer detailed insights into molecular decay processes.
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