Biolabile ferrous iron bearing nanoparticles in glacial sediments

https://doi.org/10.1016/j.epsl.2018.04.022Get rights and content
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Highlights

  • Fe in glacial sediments and aeolian dust assessed using microscopy and spectroscopy.

  • Occurrence of biolabile Fe(II)-bearing nanoparticles in glacial sediments.

  • Mixed valence Fe nanoparticles in glacial sediments are stabilised from further oxidation.

  • An aeolian dust sample exhibits Fe(III) dominated mineralogy implying lower reactivity.

  • Biolabile Fe from glacial sediments may fuel highly productive waters around ice sheets.

Abstract

Glaciers and ice sheets are a significant source of nanoparticulate Fe, which is potentially important in sustaining the high productivity observed in the near-coastal regions proximal to terrestrial ice cover. However, the bioavailability of particulate iron is poorly understood, despite its importance in the ocean Fe inventory. We combined high-resolution imaging and spectroscopy to investigate the abundance, morphology and valence state of particulate iron in glacial sediments. Our results document the widespread occurrence of amorphous and Fe(II)-rich and Fe(II)-bearing nanoparticles in Arctic glacial meltwaters and iceberg debris, compared to Fe(III)-rich dominated particulates in an aeolian dust sample. Fe(II) is thought to be highly biolabile in marine environments. Our work shows that glacially derived Fe is more labile than previously assumed, and consequently that glaciers and ice sheets are therefore able to export potentially bioavailable Fe(II)-containing nanoparticulate material to downstream ecosystems, including those in a marine setting. Our findings provide further evidence that Greenland Ice Sheet meltwaters may provide biolabile particulate Fe that may fuel the large summer phytoplankton bloom in the Labrador Sea, and that Fe(II)-rich particulates from a region of very high productivity downstream of a polar ice sheet may be glacial in origin.

Keywords

glaciers
Arctic
iron
biological pump
export-productivity
sediment

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