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May 28, 2026Atmospheric measurement techniques0 citationsOpen Access

Particle nitrate measurement using a thermal-dissociation, cavity-ringdown-spectrometer with gas-phase denuder (D-TD-CRDS)

PDPatrick DewaldTSTobias SeubertLWLaura Wüst

Key Points

  • This research aims to enhance the accuracy of particle nitrate measurements to understand its effects on human health.
  • Modified an existing Denuded-Thermal-Dissociation-Cavity-Ring-Down Spectrometer (D-TD-CRDS) system.
  • Developed an air drying system to maintain relative humidity below 5%.
  • Conducted laboratory experiments comparing D-TD-CRDS measurements with those from an Aerosol Mass Spectrometer (AMS).
  • Achieved a limit of detection for particulate nitrate of ∼ 0.035 µg m−3 in the laboratory and ∼ 0.085 µg m−3 in the field.
  • Estimation of measurement uncertainty is under 15%.
  • Laboratory tests showed excellent agreement between D-TD-CRDS and AMS measurements for both inorganic and organic nitrate aerosols.

Abstract

Abstract. Ambient inorganic and organic particulate nitrate has been connected to cardiovascular and respiratory illness. Accurate measurement of nitrate in both gas- and aerosol-phases is essential for understanding its partitioning and thus its impact on human health. We report modifications to an existing Denuded-Thermal-Dissociation-Cavity-Ring-Down Spectrometer (D-TD-CRDS) system that reliably measured gas-phase NOX (NO and NO2) and NOY (NOX plus other reactive nitrogen species, see below) but suffered from a positive bias in particle nitrate measurement owing to denuder breakthrough and memory effects associated with changes in relative humidity. We describe an air drying system with low particle transmission losses that reduces the relative humidity at the inlet of the denuder to < 5 % so that no measurable denuder breakthrough of NOY (even of highly volatile species such as NO) was observed after continuous use over the course of month-long campaigns. The D-TD-CRDS measurement of particulate nitrate has a limit of detection (1 min) of ∼ 0.035 µg m−3 under laboratory conditions and ∼ 0.085 µg m−3 during field deployment. The associated uncertainty is estimated to be < 15 %. Laboratory experiments in which either inorganic nitrate aerosol (ammonium nitrate) or organic nitrate aerosol (generated from the NO3-induced oxidation of limonene) were sampled simultaneously from an environmental chamber by the D-TD-CRDS and with an Aerosol Mass Spectrometer (AMS) showed excellent agreement.

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Cite This Study

Dewald et al. (2026) studied this question.

synapsesocial.com/papers/6a17dc063fad632b0f9d8a60https://doi.org/10.5194/amt-19-3445-2026
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