Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The influence of this metabolism on the kinetics of CaCO3 growth, as well as the dominant polymorphs precipitated, is poorly understood. To investigate the role of microbial metabolism on CaCO3 precipitation and polymorph selection, we conducted growth experiments with the sulfate reducing bacteria (D. bizertensis) in media with varying Mg/Ca and different seeding materials (calcite and kaolinite). Our results suggest that sulfate reducing bacteria both induce carbonate mineral precipitation through an increase in alkalinity and serve as a nucleation sites for the growing carbonate mineral; the majority of the carbonate minerals produced were on ce...
Abstract: Numerous microbial species can selectively precipitate mineral carbonates with enhanced me...
Several bacterial species influence carbonate mineral precipitation by modifying pH, alkalinity, Ca²...
Recognizing microbial imprints in the morphology of calcium carbonate minerals that form in very sup...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The i...
Microbial sulfate reduction, couple to organic matter oxidation or methane oxidation, is one of the ...
Microbial sulfate reduction is thought to stimulate carbonate precipitation in modern stromatolites,...
Sulfate reduction has been suggested as a mechanism to induce precipitation of calcium and magnesium...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Sulfate reduction has been suggested as a mechanism to induce precipitation of calcium and magnesium...
During Earth’s history, precipitation of calcium carbonate by heterotrophic microbes has substantial...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Abstract: Numerous microbial species can selectively precipitate mineral carbonates with enhanced me...
Several bacterial species influence carbonate mineral precipitation by modifying pH, alkalinity, Ca²...
Recognizing microbial imprints in the morphology of calcium carbonate minerals that form in very sup...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The i...
Microbial sulfate reduction, couple to organic matter oxidation or methane oxidation, is one of the ...
Microbial sulfate reduction is thought to stimulate carbonate precipitation in modern stromatolites,...
Sulfate reduction has been suggested as a mechanism to induce precipitation of calcium and magnesium...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Sulfate reduction has been suggested as a mechanism to induce precipitation of calcium and magnesium...
During Earth’s history, precipitation of calcium carbonate by heterotrophic microbes has substantial...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Abstract: Numerous microbial species can selectively precipitate mineral carbonates with enhanced me...
Several bacterial species influence carbonate mineral precipitation by modifying pH, alkalinity, Ca²...
Recognizing microbial imprints in the morphology of calcium carbonate minerals that form in very sup...