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Impact of Elevated CO₂ Concentrations on Carbonate Mineral Precipitation Ability of Sulfate-Reducing Bacteria and Implications For CO₂ Sequestration

Research output: Contribution to journalArticlepeer-review

Abstract

Interest in anthropogenic CO 2 release and associated global climatic change has prompted numerous laboratory-scale and commercial efforts focused on capturing, sequestering or utilizing CO 2 in the subsurface. Known carbonate mineral precipitating microorganisms, such as the anaerobic sulfate-reducing bacteria (SRB), could enhance the rate of conversion of CO 2 into solid minerals and thereby improve long-term storage of captured gasses. The ability of SRB to induce carbonate mineral precipitation, when exposed to atmospheric and elevated pCO 2 , was investigated in laboratory scale tests with bacteria from organic-rich sediments collected from hypersaline Lake Estancia, New Mexico. The enriched SRB culture was inoculated in continuous gas flow and batch reactors under variable headspace pCO 2 (0.0059 psi to 20 psi). Solution pH, redox conditions, sulfide, calcium and magnesium concentrations were monitored in the reactors. Those reactors containing SRB that were exposed to pCO 2 of 14.7 psi or less showed Mg-calcite precipitation. Reactors exposed to 20 psi pCO 2 did not exhibit any carbonate mineralization, likely due to the inhibition of bacterial metabolism caused by the high levels of CO 2 . Hydrogen, lactate and formate served as suitable electron donors for the SRB metabolism and related carbonate mineralization. Carbon isotopic studies confirmed that ~53% of carbon in the precipitated carbonate minerals was derived from the CO 2 headspace, with the remaining carbon being derived from the organic electron donors, and the bicarbonate ions available in the liquid medium. The ability of halotolerant SRB to induce the precipitation of carbonate minerals can potentially be applied to the long-term storage of anthropogenic CO 2 in saline aquifers and other ideal subsurface rock units by converting the gas into solid immobile phases.

Original languageAmerican English
Pages (from-to)250-271
Number of pages22
JournalApplied Geochemistry
Volume78
DOIs
StatePublished - Mar 1 2017

Keywords

  • Aquifers
  • Bacteria
  • Batch Reactors
  • Carbonate Minerals
  • Carbonation
  • Flow Of Gases
  • Hydrogeology
  • Metabolism
  • Mineralogy
  • Organic Minerals
  • Physiology
  • Sulfate Minerals
  • Sulfur Compounds
  • Bacterial Metabolism
  • Calcium And Magnesiums
  • Global Climatic Changes
  • Hypersaline Lakes
  • Long-Term Storage
  • Mineral Precipitation
  • Organic-Rich Sediment
  • Sulfate Reducing Bacteria
  • Carbon Dioxide
  • New Mexico
  • United States

Disciplines

  • Biology
  • Geology

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