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Iodine Activation from Iodate Reduction in Aqueous Films via Photocatalyzed and Dark Reactions

2024/12/03 by Mago Reza, Lucia Iezzi, Henning Finkenzeller +3 · 1 voice
Chemistry · Engineering · Materials Science · #Gas Sensing Nanomaterials and Sensors #Luminescence Properties of Advanced Materials #Radioactive element chemistry and processing

paper · doi:10.1021/acsearthspacechem.4c00224

openalex publication_date 2024/12/03 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/18

Abstract

High Resolution Image Download MS PowerPoint Slide Iodine in the atmosphere destroys ozone and can nucleate particles by formation of iodic acid, HIO 3 . Recent field observations suggest iodate recycles from particles sustaining significant gas-phase IO radical concentrations (0.06 pptv) in aged stratospheric air, and in elevated dust plumes. However, laboratory evidence for iodine activation from aerosols is currently missing. Here, a series of coated-wall flow tube (CWFT) experiments test for iodine release from thin aqueous films containing iodate. Photocatalyzed reactions were studied using iron(III) citrate (Fe–Cit), Arizona Test Dust (ATD), and Fe 2 O 3, along with the dark reaction of iodate with H 2 O 2 at 90% RH and 293 K. Fresh films were separately irradiated with visible and UV-A light, and the efficient release of molecular iodine, I 2, was observed from all irradiated films containing photocatalysts. For films with Fe–Cit, visible light reduced larger amounts of iodate than UV-A light, activating ∼40% of iodate as I 2 . The formation of oxygenated volatile organic compounds (OVOC) and iodinated OVOC was also observed. Dark exposure of films to H 2 O 2 led to I 2 release in smaller amounts than suggested by Bray–Liebhafsky kinetics, consistent with H 2 O 2 salting-out in the films, or possibly other reasons. Photochemical activation is enhanced by dust proxies in the film, and by aging the film with H 2 O 2 in the dark prior to irradiation. These findings help explain recent field observations of elevated IO radical concentrations in lofted dust layers, and warrant the inclusion of photocatalyzed iodate reduction in atmospheric models.

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