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February 27, 2026The Journal of Physical Chemistry A0 citations

Development of a Glow-Discharge Ion-Trap Instrument for Measuring Effective Radiative-Association Rate Coefficients

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DKDarya KisurynaSMSanjana MaheshwariSLSantiago Lorenzi

Key Points

  • The aim is to develop a novel instrument to measure radiative-association rate coefficients for ion-neutral reactions relevant to astrophysics.
  • Developed a glow-discharge ion source for stable ion currents.
  • Utilized a quadrupole mass filter for mass selection and detection.
  • Implemented a quadrupole ion trap for trapping reactants and products.
  • Studied Ag+ and O2 under pseudo-first-order conditions at room temperature.
  • Achieved the first pressure-dependent study of the Ag+ + O2 reaction.
  • Extracted a lower limit of 1 × 10-15 cm3 s-1 for the effective radiative-association rate coefficient.
  • Demonstrated capability for measuring diverse ion-neutral reactions with the instrument.

Abstract

The ability to directly measure radiative-association rate coefficients for reactions between ions and neutral molecules has long challenged chemical physics laboratories, yet radiative association is one of the most important processes occurring in cold, diffuse regions of space. A reaction kinetics instrument has been developed for the investigation of ion-molecule radiative-association reactions, aimed at measuring slow, effective reaction rate coefficients for species relevant to astrophysical objects. The instrument consists of a glow-discharge ion source for production of bright and stable ion currents, a quadrupole mass filter for mass selection and detection, and a quadrupole ion trap capable of trapping reactants and products for the long times needed to measure slow kinetics. The performance and adaptability of the glow-discharge ion source has been evaluated using several configurations. To assess the feasibility of measuring reaction rate coefficients, the reaction of Ag+ and O2 was studied under pseudo-first-order conditions in the ion trap at room temperature. We present the first pressure-dependent study of this reaction and extract a lower limit of 1 × 10-15 cm3 s-1 for the Ag+ + O2 effective radiative-association rate coefficient. Measurements of effective radiative-association rate coefficients are possible for diverse atomic and molecular ions that react with neutral molecules over a range of rates in this versatile new instrument.

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Cite This Study

Kisuryna et al. (2026) studied this question.

synapsesocial.com/papers/69a134fbed1d949a99abe6e1https://doi.org/10.1021/acs.jpca.6c00290
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