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Updated: Apr 20, 2026

Sandy Soil Improvement through Microbially Induced Calcite Precipitation MICP by Immersion
Published on: September 12, 2019
Mohammad Hamdan Alkhraisat1, Jatsue Cabrejos-Azama2, Carmen Rueda Rodríguez3
1Departamento de Química-Física II, Facultad de Farmacia, UCM, 28040 Madrid, Spain. mkhresat@farm.ucm.es
This study investigated whether magnesium can be incorporated into brushite cements to improve their properties. Researchers used magnesium-doped ceramics and reacted them with monocalcium phosphate to form brushite and newberyite. Analysis confirmed that magnesium was substituted into brushite crystals. The study also found that magnesium affected the structure and mechanical properties of the cements. The release of calcium and magnesium ions suggests potential biological activity. These findings may lead to better bone repair materials with improved performance.
Area of Science:
Background:
Magnesium-doped ceramics are being explored to improve the biological performance of brushite cements. Few studies have examined how effectively magnesium can be incorporated into brushite crystal structures. It was already known that magnesium ions can influence the properties of calcium phosphate cements. This gap motivated researchers to investigate the structural and functional effects of magnesium substitution. Brushite cements are widely used in bone repair due to their biocompatibility and resorbability. However, the extent of magnesium incorporation into brushite remains unclear. Prior research has shown that magnesium can alter the setting and mechanical properties of these cements. This study aims to clarify whether magnesium can be successfully substituted into brushite crystals.
Purpose Of The Study:
The study aimed to determine if magnesium can be substituted into brushite crystals. Researchers focused on analyzing the efficiency of magnesium incorporation into brushite cement systems. They sought to understand the structural and mechanical effects of magnesium doping. The motivation was to improve the biological and mechanical performance of brushite cements. The specific problem addressed is the limited understanding of magnesium's role in brushite crystal formation. By substituting magnesium into brushite, the goal was to enhance the material's properties. This approach could lead to better bone repair materials with improved resorption and mechanical behavior. The study also aimed to assess the release of calcium and magnesium ions from the cements.
Main Methods:
Researchers prepared Mg-doped ceramics using Mg-substituted β-TCP, stanfieldite, and farringtonite. These ceramics were reacted with primary monocalcium phosphate in the presence of water. The setting reaction produced brushite and newberyite within the cement matrix. Single crystal analysis was conducted using selected area electron diffraction and energy-dispersive X-ray spectroscopy. These techniques helped determine if magnesium was incorporated into brushite crystals. The mechanical and setting properties of the new cements were also evaluated. The release of calcium and magnesium ions was measured to assess their behavior in solution. This approach allowed researchers to study both structural and functional aspects of magnesium-substituted cements.
Main Results:
The analysis confirmed that magnesium was substituted into brushite crystal structures. SAED and EDX data provided evidence of magnesium incorporation at the atomic level. The presence of newberyite in the cement matrix indicated successful setting reactions. Magnesium substitution affected the structural characteristics of brushite crystals. The mechanical properties of the cements were influenced by the presence of magnesium ions. The setting time and compressive strength of the cements were modified by magnesium doping. Both calcium and magnesium ions were released during the setting process. These findings suggest that magnesium can be effectively incorporated into brushite cements.
Conclusions:
The study suggests that magnesium can be substituted into brushite crystal structures. The authors propose that this substitution may improve the biological and mechanical properties of cements. They suggest that magnesium incorporation could enhance the performance of brushite-based materials. The presence of newberyite indicates that the setting reaction was successful. The mechanical and setting properties of the cements were modified by magnesium doping. The release of calcium and magnesium ions supports the potential for improved biological activity. Further research is needed to optimize the amount of magnesium incorporated into brushite crystals. The findings may lead to the development of more effective bone repair materials.
The study suggests that magnesium can be incorporated into brushite crystals, potentially improving their mechanical and biological properties.
Selected area electron diffraction and energy-dispersive X-ray spectroscopy were used to analyze single crystals.
Newberyite formation indicates successful setting reactions and magnesium incorporation into the cement matrix.
The release of these ions suggests potential biological activity and resorption behavior of the cements.
Magnesium doping modifies the setting time and compressive strength of brushite cements.
The findings suggest that magnesium-substituted brushite cements may offer improved performance for bone repair applications.