Probing symmetry-driven DEA dynamics in ozone investigated by velocity slice imaging technique

We report the results of a comprehensive experimental investigation of dissociative electron attachment (DEA) to ozone using the velocity slice imaging technique. We reveal several channels that yield both O− and O2− from negative-ion resonances formed by electron attachment. Our results demonstrate that DEA to ozone proceeds through competition between symmetric and asymmetric dissociation pathways. This is governed by excitation of symmetric, asymmetric, and bending vibrational modes and likely involves vibronic coupling between the symmetry of the negative ion resonance states. At 1.6 eV, symmetric dissociation results in vibrationally excited O2 and O2− with near-thermal kinetic energies. An additional asymmetric dissociation pathway driven by overlapping contributions from A21 and B22 states producing rotationally excited O2 with enhanced translational energy is identified. DEA from the second resonance yields both O− and O2− with considerable internal energies arising from a single anionic state (B22) proceeding via an asymmetric dissociation mechanism. In the 4.1−4.4 eV region, overlapping resonances with A1 and B2 symmetry lead to asymmetric dissociation, accompanied by a notable increase in internal excitations of the molecular moieties. This also provides experimental evidence for the previously proposed A12 shape resonance at 4.2 eV. At higher energies around 6.9 eV, angular distribution analysis reveals a contribution from an additional A12 state, in contrast to the theoretically predicted B22 state. These findings establish a unified picture of competing symmetric and asymmetric dissociation mechanisms that produce highly internally excited and chemically reactive fragments.

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Publication Details

Journal
The Journal of Chemical Physics
Published
2026-10-01
DOI
https://doi.org/10.1063/5.0350118
Primary Topic
Advanced Chemical Physics Studies
Type
article
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article

Probing symmetry-driven DEA dynamics in ozone investigated by velocity slice imaging technique

Nigel John Mason, E. Krishnakumar, Vaibhav S. Prabhudesai, Krishnendu Gope et al.
The Journal of Chemical Physics
Advanced Chemical Physics Studies
article

Probing symmetry-driven DEA dynamics in ozone investigated by velocity slice imaging technique

Nigel John Mason, E. Krishnakumar, Vaibhav S. Prabhudesai, Krishnendu Gope, Melvin Varghese, Dharun J
article en

Abstract

We report the results of a comprehensive experimental investigation of dissociative electron attachment (DEA) to ozone using the velocity slice imaging technique. We reveal several channels that yield both O− and O2− from negative-ion resonances formed by electron attachment. Our results demonstrate that DEA to ozone proceeds through competition between symmetric and asymmetric dissociation pathways. This is governed by excitation of symmetric, asymmetric, and bending vibrational modes and likely involves vibronic coupling between the symmetry of the negative ion resonance states. At 1.6 eV, symmetric dissociation results in vibrationally excited O2 and O2− with near-thermal kinetic energies. An additional asymmetric dissociation pathway driven by overlapping contributions from A21 and B22 states producing rotationally excited O2 with enhanced translational energy is identified. DEA from the second resonance yields both O− and O2− with considerable internal energies arising from a single anionic state (B22) proceeding via an asymmetric dissociation mechanism. In the 4.1−4.4 eV region, overlapping resonances with A1 and B2 symmetry lead to asymmetric dissociation, accompanied by a notable increase in internal excitations of the molecular moieties. This also provides experimental evidence for the previously proposed A12 shape resonance at 4.2 eV. At higher energies around 6.9 eV, angular distribution analysis reveals a contribution from an additional A12 state, in contrast to the theoretically predicted B22 state. These findings establish a unified picture of competing symmetric and asymmetric dissociation mechanisms that produce highly internally excited and chemically reactive fragments.

The Journal of Chemical PhysicsVol. 165(13)
Tata Institute of Fundamental Research (IN), Raman Research Institute (IN), University of Kent (GB), Indian Institute of Science Education and Research Thiruvananthapuram (IN)
Openalex Percentile: Top 14%
Advanced Chemical Physics Studies
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