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February 25, 2026Journal of the American Chemical Society0 citations

An Iodide-Mediated Microdroplet for Efficient Ozone Decomposition

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BCBosheng ChenCNCheng NiLDLin Ding

Key Points

  • The research aims to enhance the efficiency of ozone decomposition using a scalable iodide-mediated microdroplet system.
  • Developed a microdroplet reactor with 0.1 wt % iodide concentration.
  • Conducted experiments to measure ozone decomposition at gas-liquid interfaces over 120 hours.
  • Performed life cycle assessments to evaluate environmental and economic impacts.
  • Achieved 100% ozone decomposition in iodide-mediated microdroplets.
  • Demonstrated five-fold longer operational stability compared to traditional spray reactors.
  • Showed lower energy consumption (10.4%) and cost (8.0%) for ozone purification.

Abstract

Microdroplet chemistry offers a promising platform for advancing green chemical processes; however, its limited reaction efficiency has restricted practical applications. Herein, we report a scalable iodide-mediated microdroplet system that markedly enhances stability and rate. The iodide-mediated microdroplet system (0.1 wt %) can achieve 100% ozone (O3) decomposition at the gas-liquid interface for 120 h and exhibits continuous and stable characteristics. Experiments proved that compared with bulk solution, I- enrichment and strong O3 affinity at microdroplet interfaces promote the accumulation of reactants and stabilize transition states. Moreover, the strong interfacial electric field induces hydroxide dissociation and drives electron-mediated regeneration of I- from iodine species, thereby sustaining continuous O3 reduction. Compared with the spray reactor, the iodide-mediated microdroplet reactor achieves a 100% O3 conversion, above 5-fold longer operational stability, 8.0% cost, and 10.4% energy consumption. Life cycle assessment further confirms its superior environmental and economic performance. This work provides a mechanistic understanding of the iodide-driven interfacial redox reaction and offers a scalable, green approach for O3 purification.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/699e912ef5123be5ed04e8afhttps://doi.org/10.1021/jacs.5c19641
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