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A quantitative comparison of the physical supply and biological uptake of new nitrogen in the Arctic Ocean

delete2026-03-10
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PRE
AI
A
Anya M. Waite *
A
Alice Lane
E
Eddy Carmack
S
Seth L. Danielson
I
Ingrid Ellingsen
I
Ilker Fer
Y
Yueng‐Djern Lenn
L
Laurent Oziel
B
Benjamin Rabe
A
Achim Randelhoff
E
Eric J. Raes
A
Andreas Rogge
J
Jean-Éric Tremblay
S
Sinhue Torres-Valdes
S
Sarah‐Sophie Weil
W
Wilken-Jon von Appen
DOI:10.1038/s43017-026-00769-zdelete
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Abstract

Abstract

En 中文
Nitrogen constrains biomass across the Arctic Ocean, with nitrate (NO3) supply to the surface waters fuelling new primary production and net carbon drawdown. In this Review, we explore the physical mechanisms driving NO3 fluxes to the euphotic zone across the Arctic Ocean and how biological processes respond. The volume and inflow depth of Atlantic and Pacific Ocean waters, together with sea ice and halocline dynamics, govern internal physical mixing of NO3. Respectively, these inflows supply ~34 ± 5 kmol NO3 s−1 and 9 ± 1 kmol NO3 s−1, spreading at mid-depth. NO3 from below the euphotic zone is mixed upwards via several mechanisms. Overall, NO3 fluxes associated with diffusive and turbulent mixing, submesoscale fronts and cyclonic mesoscale eddies are relatively low (on the order of ~0.1–0.7 mmol m−2 per day) but cover a large area, with peaks associated with wind events or individual strong eddies. By comparison, upwelling-driven fluxes are much stronger (on the order of ~1 mmol m−2 per day) but are more localized. Near-inertial and tidal mixing over the Arctic Ocean’s complex bathymetry drives perhaps the strongest NO3 fluxes, for example, reaching 4.5 mmol m−2 per day in the Barents Sea. Comparing these fluxes with observed biological NO3 uptake rates indicates that the internal physical supply of NO3 only limits primary productivity in 9 of the 17 cases considered. Thereafter, light limitation and lagged growth responses can result in excess NO3 remaining in the surface waters. Future research should prioritize linking NO3 supply and uptake at corresponding spatiotemporal scales. Vertical nitrate fluxes to sunlit surface waters have an important role in supporting primary production in the Arctic Ocean. This Review explores the contributions of various physical mixing mechanisms in supplying nitrate to the Arctic euphotic zone and compares them to the biological uptake rates.
Keywords:
Ocean sciences
Physical oceanography
Earth Sciences
general

Journal

N
Nature Reviews Earth & Environment
IF:
71.5
Papers:
51
Citations:
0

Organization

H
helmholtz centre for polar and marine research
Scholars:
25
Papers: 11
Citations: 0
U
university of alaska fairbanks
Scholars:
190
Papers: 126
Citations: 0
U
université laval
Scholars:
452
Papers: 166
Citations: 6
F
fisheries and oceans
Scholars:
2
Papers: 2
Citations: 0
M
Minderoo Foundation
Scholars:
93
Papers: 47
Citations: 104
U
university of bergen
Scholars:
2.0W
Papers: 1.7W
Citations: 19
D
Dalhousie University
Scholars:
1.9W
Papers: 1.8W
Citations: 2.3W
B
bangor university
Scholars:
439
Papers: 253
Citations: 0
F
Fram Centre
Scholars:
21
Papers: 9
Citations: 0
S
Sintef Ocean
Scholars:
38
Papers: 19
Citations: 0
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