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Controls on Polar Southern Ocean Deep Chlorophyll Maxima: Viewpoints from Multiple Observational Platforms
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  • Philip W Boyd,
  • David Antoine,
  • Kimberlee Baldry,
  • Marin Cornec,
  • Michael J Ellwood,
  • Svenja Halfter,
  • Léo Lacour,
  • Pauline Marie Aurelie Latour,
  • Robert Francis Strzepek,
  • Thomas W. Trull,
  • Tyler Weaver Rohr
Philip W Boyd
Institute for Marine and Antarctic Studies
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David Antoine
Curtin University
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Kimberlee Baldry
2. Institute of Marine and Antarctic Studies, University of Tasmania
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Marin Cornec
NOAA-PMEL

Corresponding Author:[email protected]

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Michael J Ellwood
Australian National University
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Svenja Halfter
NIWA
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Léo Lacour
Sorbonne Université, CNRS, Laboratoire d'Océanographie de Villefranche, LOV, Villefranche‐sur‐Mer, France.
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Pauline Marie Aurelie Latour
Institute for Marine and Antarctic Studies (IMAS), University of Tasmania (UTAS)
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Robert Francis Strzepek
University of Tasmania
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Thomas W. Trull
Commonwealth Scientific and Industrial Research Organisation (CSIRO)
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Tyler Weaver Rohr
University of Tasmania
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Abstract

Deep Chlorophyll Maxima (DCMs) are ubiquitous in low-latitude oceans, and of recognized biogeochemical and ecological importance. DCMs have been observed in the Southern Ocean, initially from ships and recently from profiling robotic floats, but with less understanding of their onset, duration, underlying drivers, or whether they are associated with enhanced biomass features. We report the characteristics of a DCM and DBM (Deep Biomass Maximum) in the Inter-Polar-Frontal-Zone (IPFZ) south of Australia from CTD profiles, shipboard-incubated samples, a towbody, and a BGC-ARGO float. The DCM and DBM were ~20 m thick and co-located with the nutricline, in the vicinity of a subsurface ammonium maximum characteristic of the IPFZ, but ~100 m shallower than the ferricline. Towbody transects demonstrated that the co-located DCM/DBM was broadly present across the IPFZ. Large healthy diatoms, with low iron requirements, resided within the DCM/DBM, and fixed up to 20 mmol C m-2 d-1. The BGC-ARGO float revealed the DCM/DBM persisted for >3 months. We propose a dual environmental mechanism to drive DCM/DBM formation and persistence within the IPFZ: sustained supply of both recycled iron within the subsurface ammonium maxima and upward silicate transport from depth. DCM/DBM cell-specific growth rates were considerably slower than those in the overlying mixed layer, implying that phytoplankton losses are also reduced, possibly as a result of heavily silicified diatom frustules. The light-limited seasonal termination of the observed DCM/DBM did not result in a ‘diatom dump’, rather ongoing diatom downward export occurred throughout its multi-month persistence.
13 Jun 2023Submitted to ESS Open Archive
14 Jun 2023Published in ESS Open Archive