Emerging nitrogen-driven urban atmosphere control on aerosol iron dissolution for biogeochemical cycles.

Wang, Guochen; Chen, Xiyao; Huang, Kan; Guan, Wenkai; Zhi, Minkang; Yuan, Qi; Li, Keliang; Xu, Liang et al. · Sci Adv · 2026

basic_science · Level V

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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 (<i>R</i><sub>N/S</sub>). 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 PM<sub>2.5</sub> (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.