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June 3, 2026Analytical Chemistry0 citationsOpen Access

Reactive Paper Spray Mass Spectrometry Enables Speciation of Trace Levels of Mercuric Halides

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MBMohammad Borna BahramsariMHMd Tanim-Al HassanHCH Chen

Key Points

  • The aim is to develop a method for identifying specific molecular forms of gaseous oxidized mercury and mercuric halides.
  • Utilized reactive paper spray mass spectrometry (RPS-MS) for ionization without thermal desorption.
  • Applied halide reagents to initiate reversible ligand-exchange reactions.
  • Conducted kinetic modeling to elucidate the ionization mechanism.
  • Iodide showed a higher degree of ionization compared to chloride with lower concentrations.
  • Successful recovery of chemical identity for preconcentrated mercuric halides in a sample of ambient air.
  • Kinetic modeling confirmed the ionization mechanism with observed ionic products from halide addition and loss.

Abstract

Gaseous oxidized mercury (GOM) plays a key role in atmospheric mercury cycling, yet its specific molecular forms remain known mostly from theoretical calculations. Existing analytical methods relying on preconcentration and thermal desorption erase the original chemical speciation of this ultratrace pollutant, providing only indirect evidence. Here, we report a nonthermal, reagent-directed ionization strategy based on reactive paper spray mass spectrometry (RPS-MS), allowing us to recover the chemical identity of preconcentrated mercuric halides. The ionization is initiated by the addition of a halide reagent ion and proceeds through reversible halide addition and loss steps that drive ligand-exchange reactions characteristic of mercuric halides in solution and on surfaces. The mechanism is elucidated through kinetic modeling and experimentally validated by observing ionic products of halide addition and halide loss. By comparing iodide and chloride as ionizing reagents, we show that a higher degree of ionization can be achieved with iodide, using a significantly lower concentration and at the expense of only moderate overexchange. This reagent-controlled chemistry offers a generalizable framework that can be extended to atmospheric GOMs and other ultratrace oxidized metal systems, as demonstrated by speciating an ambient air sample and a CdCl

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Cite This Study

Bahramsari et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc730dee9eb8c0dce81d0https://doi.org/10.1021/acs.analchem.6c02808
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