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February 12, 2026Journal of Geophysical Research Oceans0 citations

Biogeochemistry of Dissolved Manganese in the Western North Pacific Subtropical Gyre: Sources, Fluxes, and Cycling Drivers

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YYYichao YangJRJingling RenQLQian Liu

Key Points

  • This research aims to investigate the sources, fluxes, and cycling drivers of dissolved manganese in the North Pacific Subtropical Gyre.
  • Analyzed high-resolution dissolved manganese data collected during the Chinese GEOTRACES GP09 cruise.
  • Assessed contributions from atmospheric deposition and horizontal transport to mixed-layer manganese levels.
  • Evaluated manganese flux budgets in the euphotic zone and deep waters.
  • Surface dissolved manganese averaged 1.41 nmol kg −1, with significant contributions from atmospheric deposition and lateral transport.
  • Horizontal transport exceeded atmospheric inputs by an order of magnitude, affecting the manganese flux budget.
  • Hydrothermal inputs significantly enriched deep water manganese concentrations, while localized enrichments occurred due to abyssal boundary interactions.

Abstract

Abstract In the oligotrophic North Pacific Subtropical Gyre (NPSG), manganese (Mn) cycling, despite its ecological importance and role as a tracer, has received less attention than macronutrient dynamics. Here, we present high‐resolution dissolved Mn (dMn) data across the western NPSG during the Chinese GEOTRACES GP09 cruise. Surface dMn showed regional characteristics, with an average concentration of 1.41 ± 0.50 nmol kg −1 ( n = 142). Atmospheric deposition could explain approximately 35% of mixed‐layer dMn, with highly variable wet deposition fluxes. The discrepancy between the observed dMn and atmospheric inputs suggests that additional sources, such as lateral transport or island inputs, are significant. In the euphotic zone, a dMn flux budget revealed that horizontal transport (189 ± 160 μmol m −2 year −1 ) exceeded atmospheric deposition by more than an order of magnitude, while oxidative scavenging (140 ± 90 μmol m −2 year −1 ) dominated removal processes. This balance yields a dMn residence time of 1.1 ± 0.9 years in the euphotic zone. Intermediate water masses ( σ 0 = 26.6–27.4 kg m −3 ) displayed a robust inverse dMn–salinity relationship ( r = 0.89, p 1,500 m) dMn distributions showed basin‐scale depletion (<0.2 nmol kg −1 ) interrupted by two distinct enrichment processes: (a) Hydrothermal inputs from the Mariana Trough vent field generated extreme dMn enrichment (up to 3.05 nmol kg −1 ), with the signal transported conservatively over hundreds of kilometers. (b) Abyssal boundary interactions at the Luzon Strait and Yap–Mariana Junction generated localized peaks (0.92–1.55 nmol kg −1 ) through resuspension by strong deep currents.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/698d6eca5be6419ac0d54a5fhttps://doi.org/10.1029/2025jc023192
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