Influence of Magnesium Source on the Mechanochemical Synthesis of Magnesium-Substituted Hydroxyapatite

Author:

Bulina Natalia V.1ORCID,Eremina Natalya V.1ORCID,Makarova Svetlana V.1ORCID,Borodulina Irina A.1,Vinokurova Olga B.1,Avakyan Leon A.2ORCID,Paramonova Ekaterina V.3ORCID,Bystrov Vladimir S.3ORCID,Logutenko Olga A.1

Affiliation:

1. Institute of Solid State Chemistry and Mechanochemistry, Siberian Branch of the Russian Academy of Sciences, Kutateladze Str. 18, 630090 Novosibirsk, Russia

2. Physics Faculty, Southern Federal University, 344090 Rostov-on-Don, Russia

3. Institute of Mathematical Problems of Biology—Branch of Keldysh Institute of Applied Mathematics, Russian Academy of Sciences, 142290 Pushchino, Russia

Abstract

Magnesium, as one of the most abundant cations in the human body, plays an important role in both physiological and pathological processes. In this study, it was shown that a promising biomedical material, Mg-substituted hydroxyapatite (Mg-HA), can be synthesized via a fast mechanochemical method. For this method, the nature of magnesium-containing carriers was shown to be important. When using magnesium oxide as a source of magnesium, the partial insertion of magnesium cations into the apatite structure occurs. In contrast, when magnesium hydroxide or monomagnesium phosphate is used, single-phase Mg-HA is formed. Both experimental and theoretical investigations showed that an increase in the Mg content leads to a decrease in the lattice parameters and unit cell volume of Mg-HA. Density functional theory calculations showed the high sensitivity of the lattice parameters to the crystallographic position of the calcium site substituted by magnesium. It was shown experimentally that the insertion of magnesium cations decreases the thermal stability of hydroxyapatite. The thermal decomposition of Mg-HA leads to the formation of a mixture of stoichiometric HA, magnesium oxide, and Mg-substituted tricalcium phosphate phases.

Funder

Russian Science Foundation

Publisher

MDPI AG

Subject

General Materials Science

Reference48 articles.

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3. Ratner, B.D., Hoffman, A.S., Schoen, F.J., and Lemons, J.E. (2013). Biomaterials Science, Academic Press. [3rd ed.].

4. Elliott, J.C. (1994). Structure and Chemistry of the Apatites and Other Calcium Orthophosphates, Elsevier Science.

5. Substituted hydroxyapatites for biomedical applications: A review;Supova;Ceram. Int.,2015

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