Cooling dynamics of energized naphthalene and azulene radical cations

Author:

Lee Jason W. L.1ORCID,Stockett Mark H.2ORCID,Ashworth Eleanor K.3ORCID,Navarro Navarrete José E.2,Gougoula Eva1ORCID,Garg Diksha1ORCID,Ji MingChao2ORCID,Zhu Boxing2ORCID,Indrajith Suvasthika2ORCID,Zettergren Henning2ORCID,Schmidt Henning T.2ORCID,Bull James N.3ORCID

Affiliation:

1. Deutsches Elektronen-Synchrotron DESY 1 , Notkestr. 85, 22607 Hamburg, Germany

2. Department of Physics, Stockholm University 2 , SE-10691 Stockholm, Sweden

3. School of Chemistry, Norwich Research Park, University of East Anglia 3 , Norwich NR4 7TJ, United Kingdom

Abstract

Naphthalene and azulene are isomeric polycyclic aromatic hydrocarbons (PAHs) and are topical in the context of astrochemistry due to the recent discovery of substituted naphthalenes in the Taurus Molecular Cloud-1 (TMC-1). Here, the thermal- and photo-induced isomerization, dissociation, and radiative cooling dynamics of energized (vibrationally hot) naphthalene (Np+) and azulene (Az+) radical cations, occurring over the microsecond to seconds timescale, are investigated using a cryogenic electrostatic ion storage ring, affording “molecular cloud in a box” conditions. Measurement of the cooling dynamics and kinetic energy release distributions for neutrals formed through dissociation, until several seconds after hot ion formation, are consistent with the establishment of a rapid (sub-microsecond) Np+ ⇌ Az+ quasi-equilibrium. Consequently, dissociation by C2H2-elimination proceeds predominantly through common Az+ decomposition pathways. Simulation of the isomerization, dissociation, recurrent fluorescence, and infrared cooling dynamics using a coupled master equation combined with high-level potential energy surface calculations [CCSD(T)/cc-pVTZ], reproduce the trends in the measurements. The data show that radiative cooling via recurrent fluorescence, predominately through the Np+ D0 ← D2 transition, efficiently quenches dissociation for vibrational energies up to ≈1 eV above dissociation thresholds. Our measurements support the suggestion that small cations, such as naphthalene, may be more abundant in space than previously thought. The strategy presented in this work could be extended to fingerprint the cooling dynamics of other PAH ions for which isomerization is predicted to precede dissociation.

Funder

Swedish Foundation for International Cooperation in Research and Higher Education

Engineering and Physical Sciences Research Council

Helmholtz Association

Swedish Research Council

European Cooperation in Science and Technology

University of East Anglia

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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