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Carbon Sequestration in Biogenic Magnesite and Other Magnesium Carbonate Minerals.
McCutcheon, Jenine; Power, Ian M; Shuster, Jeremiah; Harrison, Anna L; Dipple, Gregory M; Southam, Gordon.
Affiliation
  • McCutcheon J; Department of Earth Sciences , Western University , London , Ontario N6A 5B7 , Canada.
  • Power IM; School of Earth and Environment , University of Leeds , Leeds , LS2 9JT , United Kingdom.
  • Shuster J; Department of Earth, Ocean and Atmospheric Sciences , The University of British Columbia , Vancouver , British Columbia V6T 1Z4 , Canada.
  • Harrison AL; School of the Environment , Trent University , Peterborough , Ontario K9L 0G2 , Canada.
  • Dipple GM; School of Biological Sciences , University of Adelaide , Adelaide , South Australia 5005 , Australia.
  • Southam G; CSIRO Land and Water , Glen Osmond , South Australia 5064 , Australia.
Environ Sci Technol ; 53(6): 3225-3237, 2019 03 19.
Article in En | MEDLINE | ID: mdl-30786208
The stability and longevity of carbonate minerals make them an ideal sink for surplus atmospheric carbon dioxide. Biogenic magnesium carbonate mineral precipitation from the magnesium-rich tailings generated by many mining operations could offset net mining greenhouse gas emissions, while simultaneously giving value to mine waste products. In this investigation, cyanobacteria in a wetland bioreactor enabled the precipitation of magnesite (MgCO3), hydromagnesite [Mg5(CO3)4(OH)2·4H2O], and dypingite [Mg5(CO3)4(OH)2·5H2O] from a synthetic wastewater comparable in chemistry to what is produced by acid leaching of ultramafic mine tailings. These precipitates occurred as micrometer-scale mineral grains and microcrystalline carbonate coatings that entombed filamentous cyanobacteria. This provides the first laboratory demonstration of low temperature, biogenic magnesite precipitation for carbon sequestration purposes. These findings demonstrate the importance of extracellular polymeric substances in microbially enabled carbonate mineral nucleation. Fluid composition was monitored to determine carbon sequestration rates. The results demonstrate that up to 238 t of CO2 could be stored per hectare of wetland/year if this method of carbon dioxide sequestration was implemented at an ultramafic mine tailing storage facility. The abundance of tailings available for carbonation and the anticipated global implementation of carbon pricing make this method of mineral carbonation worth further investigation.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Carbon Sequestration / Magnesium Language: En Journal: Environ Sci Technol Year: 2019 Document type: Article Affiliation country: Canada Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Carbon Sequestration / Magnesium Language: En Journal: Environ Sci Technol Year: 2019 Document type: Article Affiliation country: Canada Country of publication: United States