BioGeoMetal · Nutrients in anoxic oceans – Trace metals in modern and ancient environments
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-12-01 → 2021-11-30
- EU contribution
- €191,149
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Nutrients in anoxic oceans – Trace metals in modern and ancient environments
The global oceanic oxygen content has decreased by more than 2% since 1960 and is projected to drop further in the near future. This decline will drastically impact ocean nutrient cycles and marine life, but the exact progression of ocean anoxia and its impacts are hard to predict. Intervals of low-oxygen conditions are relatively common in Earth's long history. The study of such past climate disturbances can improve projections of future ocean anoxia and associated environmental change, but this requires reconstruction of past environmental parameters based on what is left in the sedimentary record. This project aims to develop and apply new ways of using geochemical tracers for past ocean environments. The focus is on the role of trace elements in anoxic waters and their impact on marine life and biogeochemical cycles. Trace elements are essential to life and are taken up in phytoplankton cells. Many of these elements are also less soluble in waters with less oxygen, such that high enrichments of these elements in the sedimentary record are used as geochemical tracers for low-oxygen conditions. Ongoing ocean deoxygenation may lower the availability of some bio-essential trace metals and this could ultimately affect marine ecosystems. The aims of this study are three-fold: 1) Improve reconstructions of past low-oxygen conditions using trace-element based geochemical tracers, 2) Evaluate the behaviour of bio-essential trace elements in low-oxygen conditions, and 3) Reconstruct the relative availability of trace element micronutrients over Earth's history. (These aims represent a slight deviation from the original proposal as a consequence of the outbreak of the SARS-CoV-2 pandemic. The planning and content of the project was affected by the pandemic and associated measures, which started ~3 months into the project. However, the revised aims and approach serve the same overall goal: to better understand trace element cycling in low-oxygen waters. Originally, the objectives (also) included study of intervals of global perturbations to the Earth's environment and the development of new laboratory methods. These targets have been replaced with a more detailed study of local and regional trace-element cycling and the compilation and use of large datasets that can substitute for the more specific analyses.)
Data: CORDIS, © European Union
Project objective
The global oceanic oxygen content has decreased by more than 2% since 1960 and is projected to drop further in the near future. This decline could drastically impact ocean nutrient cycles and marine life, but the exact progression of ocean anoxia and its impacts are hard to predict. Earth's history is punctuated by intervals of widespread ocean anoxia that manifest themselves in the sedimentary record as specific intervals of enhanced organic-carbon burial. These intervals last for 10,000-100,000s years, are marked by perturbations to global climate and biogeochemical cycles, represent major environmental disturbances, and are often associated with mass extinctions. The study of such past climate disturbances can improve projections of future ocean anoxia and environmental change by providing better constraints on the model boundary conditions. However, this requires the detailed reconstruction of past environmental parameters based on the sedimentary record. This project aims to develop and apply new ways of using geochemical tracers for past ocean environments. The focus is on the role of trace metals in anoxic waters and their impact on marine life and biogeochemical cycles.Trace metals are essential to life and are taken up in phytoplankton cells but are also reactive towards dissolved sulphide. Though such processes leave diagnostic geochemical imprints on the isotope composition of the marine sedimentary record, their interpretation is often complicated as a result of this dual sensitivity. This research project will establish new methods to distinguish between these two controls. These methods will then be applied to samples from a variety of modern environments to establish a thorough understanding of trace metal cycling in anoxic waters. Combined with biogeochemical modelling, these new methods will then be used to reconstruct the interplay between global warming and biogeochemical cycles during an interval of widespread anoxia in the Cretaceous.
Original text from CORDIS.
Participants
- EIDGENOESSISCHE TECHNISCHE HOCHSCHULE ZUERICH · ZuerichCoordinatorSwitzerland
Links
- View on CORDIS
- DOI: 10.3030/834236
- https://isotope.ethz.ch/research/geochemical-evolution-earth-surface.html
Data: CORDIS, © European Union
