Abstract: Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical properties, however, understanding exactly how they achieve this control represents a major challenge in the field of biomineralisation. We have studied microbial induced calcium carbonate (CaCO3) precipitation (MICP) in three ureolytic bacterial strains from the Sporosarcina family, including S. newyorkensis, a newly isolated microbe from the deep sea. We find that the interplay between structural water and strain-specific amino acid groups is fundamental to the stabilisation of vaterite and that, under the same conditions, different isolates yield distinctly different polymorphs. The latter is found to be associated with different ...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The in...
© 2016Microbial carbonates are emerging as sustainable alternative cementing materials. We explore c...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The i...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
During a study of ureolytic microbial calcium carbonate (CaCO3) precipitation by bacterial isolates ...
During a study of ureolytic microbial calcium carbonate (CaCO3) precipitation by bacterial isolates ...
During a study of ureolytic microbial calcium carbonate (CaCO3) precipitation by bacterial isolates ...
Biomineralization is a known natural phenomenon associated with a wide range of bacterial species. B...
Microbial-induced CaCO3 precipitation (MICP) is an innovative technique that harnesses bacterial act...
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 in...
© 2016Microbial carbonates are emerging as sustainable alternative cementing materials. We explore c...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The i...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
Numerous microbial species can selectively precipitate mineral carbonates with enhanced mechanical p...
During a study of ureolytic microbial calcium carbonate (CaCO3) precipitation by bacterial isolates ...
During a study of ureolytic microbial calcium carbonate (CaCO3) precipitation by bacterial isolates ...
During a study of ureolytic microbial calcium carbonate (CaCO3) precipitation by bacterial isolates ...
Biomineralization is a known natural phenomenon associated with a wide range of bacterial species. B...
Microbial-induced CaCO3 precipitation (MICP) is an innovative technique that harnesses bacterial act...
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 in...
© 2016Microbial carbonates are emerging as sustainable alternative cementing materials. We explore c...
Microbial sulfate reduction is a dominant metabolism in many marine sedimentary environments. The i...