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Updated: Aug 30, 2026

Experimental Column Setup for Studying Anaerobic Biogeochemical Interactions Between Iron (Oxy)Hydroxides, Trace Elements, and Bacteria
Published on: December 19, 2017
Emerging nitrogen-driven urban atmosphere control on aerosol iron dissolution for biogeochemical cycles
Guochen Wang1,2, Xiyao Chen1, Kan Huang3
1Department of Atmospheric Sciences, School of Earth Sciences, Zhejiang University, Hangzhou 310058, China.
Abstract:
Iron (Fe) is a critical micronutrient regulating marine productivity and the global carbon cycle, yet its atmospheric dissolution mechanisms remain debated for biogeochemical cycle. The prevailing "iron-sulfur coupling" paradigm has traditionally explained proton-promoted dissolution. However, disproportionate declines in sulfur dioxide relative to nitrogen oxides emissions have created a "low-sulfur, high-nitrogen" atmosphere over East Asia, raising questions about the role of nitric acid. Here, we develop a data-driven framework to elucidate nitric acid-driven Fe dissolution using the nitrate-to-sulfate acidification capacity ratio (RN/S). Results show that nitrate now dominates urban aerosol Fe dissolution, contributing ∼1.5 times more than sulfate, challenging the long-standing paradigm. Global simulations further estimate that nitrate contributes to ∼68% of the enhancement in Fe solubility in PM2.5 (particulate matter with a diameter of 2.5 μm) dust relative to preindustrial levels. These findings reveal an emerging nitrogen-driven control on Fe mobilization, emphasizing the need to incorporate species-dependent acid chemistry into models to accurately represent global Fe cycling and its climate feedbacks.
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