We present results of bioaragonite to apatite conversion in bivalve, coral and cuttlebone skeletons, biological hard materials distinguished by specific microstructures, skeletal densities, original porosities and biopolymer contents. The most profound conversion occurs in the cuttlebone of the cephalopod Sepia officinalis, the least effect is observed for the nacreous shell portion of the bivalve Hyriopsis cumingii. The shell of the bivalve Arctica islandica consists of cross-lamellar aragonite, is dense at its innermost and porous at the seaward pointing shell layers. Increased porosity facilitates infiltration of the reaction fluid and renders large surface areas for the dissolution of aragonite and conversion to apatite. Skeletal micros...
The interaction of Sepia officinalis cuttlefish bone, made of aragonitic CaCO, with (NH)HPO boiling ...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
Trabajo presentado en el 14th International Symposium on Biomineralization (BIOMIN XIV) from Molecul...
We present results of bioaragonite to apatite conversion in bivalve, coral and cuttlebone skeletons,...
We present results of bioaragonite to apatite conversion in bivalve, coral and cuttlebone skeletons,...
Trabajo presentado en Granada Münster Discussion Meeting, celebrado en Münster (Alemania), del 29 al...
The replacement of aragonite by apatite is a process that occurs naturally during diagenesis, chemic...
Dolomitization, i.e., the secondary replacement of calcite or aragonite (CaCO3) by dolomite (CaMg[CO...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
The formation of apatites from calcium carbonates can be regarded as an effective way of sequesterin...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
Marine structure, coralline materials were converted to calcium phosphate using two different phosp...
In reef-building corals, larval settlement and its rapid calcification provides a unique opportunity...
The interaction of Sepia officinalis cuttlefish bone, made of aragonitic CaCO, with (NH)HPO boiling ...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
Trabajo presentado en el 14th International Symposium on Biomineralization (BIOMIN XIV) from Molecul...
We present results of bioaragonite to apatite conversion in bivalve, coral and cuttlebone skeletons,...
We present results of bioaragonite to apatite conversion in bivalve, coral and cuttlebone skeletons,...
Trabajo presentado en Granada Münster Discussion Meeting, celebrado en Münster (Alemania), del 29 al...
The replacement of aragonite by apatite is a process that occurs naturally during diagenesis, chemic...
Dolomitization, i.e., the secondary replacement of calcite or aragonite (CaCO3) by dolomite (CaMg[CO...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
The formation of apatites from calcium carbonates can be regarded as an effective way of sequesterin...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
Marine structure, coralline materials were converted to calcium phosphate using two different phosp...
In reef-building corals, larval settlement and its rapid calcification provides a unique opportunity...
The interaction of Sepia officinalis cuttlefish bone, made of aragonitic CaCO, with (NH)HPO boiling ...
Biomineralised hard parts form the most important physical fossil record of past environmental condi...
Trabajo presentado en el 14th International Symposium on Biomineralization (BIOMIN XIV) from Molecul...