FT-Raman spectroscopy proves to be a powerful technique to study surface reactions on bioactive glasses and it eliminates the fluorescence of the organic phase of whole bone, thereby making it possible to compare the reaction layers formed on bioactive glasses with the mineral phase of bone. The spectrum of hydroxycarbonate apatite (HCA) developed on the bioactive glasses is closer to that of bone than synthetic hydroxyapatite (HA) and closely matches that of bone mineral obtained by deproteination of whole human femoral cortical bone. Biomaterials (1994) 15, (10) 865-870. © 1994
Two bioactive silica-phosphate glasses, AP40 and RKKP, were compared in their behaviour in simulated...
The carbonate group is an important constituent of bioapatite, a calcium phosphate close to hydroxya...
The purpose of this work is to study the formation of hydroxyapatite (Ca10 (PO4)6(OH)2) on the surfa...
The formation of hydroxyapatite on bioactive glass was investigated by the immersion of bioactive gl...
Raman spectroscopy of natural bones and hydroxyapatites is described. In addition, how Raman spectro...
Bioactive glasses are used in medical field as bone regenerativematerials. They promote the growth o...
The rigid part of the human body consists essentially of carbonated apatite (calcium phosphate). Bio...
In the present contribution, the innovative in-situ Raman micro-spectroscopy was applied to investig...
Bioactive glasses undergo corrosion with leaching of alkaline ions when exposed to body fluids. This...
International audienceBioactive glasses are known to quickly induce the formation of a calcium phosp...
This study employed highly spectrally resolved Raman spectroscopy to examine the molecular compositi...
We have concluded preliminary investigations concerning the composition of human cortical bone tissu...
Raman spectra of bioactive glasses of the Na2O-K2O-MgO-CaO-B2O3-P2O5-SiO2 to be used in bone reconst...
Improvements to the understating of the compositional contributions of bone mineral and organic comp...
Micro-Raman spectroscopy is a technique which enables us to obtain infrared and far infrared vibrati...
Two bioactive silica-phosphate glasses, AP40 and RKKP, were compared in their behaviour in simulated...
The carbonate group is an important constituent of bioapatite, a calcium phosphate close to hydroxya...
The purpose of this work is to study the formation of hydroxyapatite (Ca10 (PO4)6(OH)2) on the surfa...
The formation of hydroxyapatite on bioactive glass was investigated by the immersion of bioactive gl...
Raman spectroscopy of natural bones and hydroxyapatites is described. In addition, how Raman spectro...
Bioactive glasses are used in medical field as bone regenerativematerials. They promote the growth o...
The rigid part of the human body consists essentially of carbonated apatite (calcium phosphate). Bio...
In the present contribution, the innovative in-situ Raman micro-spectroscopy was applied to investig...
Bioactive glasses undergo corrosion with leaching of alkaline ions when exposed to body fluids. This...
International audienceBioactive glasses are known to quickly induce the formation of a calcium phosp...
This study employed highly spectrally resolved Raman spectroscopy to examine the molecular compositi...
We have concluded preliminary investigations concerning the composition of human cortical bone tissu...
Raman spectra of bioactive glasses of the Na2O-K2O-MgO-CaO-B2O3-P2O5-SiO2 to be used in bone reconst...
Improvements to the understating of the compositional contributions of bone mineral and organic comp...
Micro-Raman spectroscopy is a technique which enables us to obtain infrared and far infrared vibrati...
Two bioactive silica-phosphate glasses, AP40 and RKKP, were compared in their behaviour in simulated...
The carbonate group is an important constituent of bioapatite, a calcium phosphate close to hydroxya...
The purpose of this work is to study the formation of hydroxyapatite (Ca10 (PO4)6(OH)2) on the surfa...