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Characterization and Geological Implications of Precambrian Calcite-Hosted Phosphate

  • Jocelyn A. Richardson
  • , Sascha Roest-Ellis
  • , Brian L. Phillips
  • , Justin V. Strauss
  • , Samuel M. Webb
  • , Nicholas J. Tosca
  • Stanford Synchrotron Radiation Lightsource
  • University of Oxford
  • Dartmouth College
  • University of Cambridge

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Constraints on marine phosphate availability and cycling directly inform our understanding of long-term biological evolution. However, early Earth phosphate records are sparse, biased toward siliciclastic samples, and susceptible to post-depositional modification. Well-preserved shallow marine inorganic carbonate precipitates provide a complementary yet understudied record of phosphate cycling. We combined micro-X-ray fluorescence mapping, X-ray absorption, and Nuclear Magnetic Resonance spectroscopy on samples of Precambrian syndepositional herringbone calcite (HBC) and microspar to characterize phosphorus speciation and distribution in these carbonate fabrics. Phosphorus spectroscopy from synthetic calcite, HBC, and microspar, is qualitatively consistent with a disordered distribution of phosphate. These characteristics are diagnostic of calcite-hosted phosphate, which is pervasive at low concentrations in HBC and microspar. This study provides evidence that ancient, well-preserved carbonate fabrics retain phosphate sourced from seawater and highlights the potential for an unaltered archive of marine phosphate concentration over geologic time.

Original languageEnglish
Article numbere2022GL100328
JournalGeophysical Research Letters
Volume49
Issue number17
DOIs
StatePublished - Sep 16 2022

Keywords

  • NMR spectroscopy
  • Precambrian
  • XANES spectroscopy
  • carbonate
  • phosphorus
  • synchrotron-XRF

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