Synthesis of High-Purity Hydroxyapatite and Phosphoric Acid Derived from Moroccan Natural Phosphate Rocks by Minimizing Cation Content Using Dissolution–Precipitation Technique

Author:

Benataya Karim1ORCID,Lakrat Mohammed1ORCID,Hammani Othmane2ORCID,Aaddouz Mohamed1ORCID,Ait Yassine Youssef34ORCID,Abuelizz Hatem A.5ORCID,Zarrouk Abdelkader67ORCID,Karrouchi Khalid8ORCID,Mejdoubi Elmiloud1

Affiliation:

1. Laboratory of Applied Chemistry and Environment, Department of Chemistry, Faculty of Sciences, Mohammed First University, Oujda 60000, Morocco

2. Chemistry Platform, Unités d’Appui Technique à la Recherche Scientifique (UATRS), Centre National pour la Recherche Scientifique & Technique (CNRST), Rabat 10102, Morocco

3. Higher School of Technology, Ibn Zohr University, Laayoune 3007, Morocco

4. Laboratory of Thermodynamics and Energy, Faculty of Sciences, Ibn Zohr University, Agadir 80150, Morocco

5. Department of Pharmaceutical Chemistry College of Pharmacy, King Saud University, P.O. Box 2457, Riyadh 11451, Saudi Arabia

6. Laboratory of Materials, Nanotechnology and Environment, Faculty of Sciences, Mohammed V University in Rabat, Rabat P.O. Box 1014, Morocco

7. Research Centre, Manchester Salt & Catalysis, 88-90 Chorlton Road, Manchester M15 4AN, UK

8. Laboratory of Analytical Chemistry and Bromatology, Team of Formulation and Quality Control of Health Products, Faculty of Medicine and Pharmacy, Mohammed V University in Rabat, Rabat 10100, Morocco

Abstract

This study investigates, in the first part, the synthesis and purification of a poorly crystalline hydroxyapatite (HAp) using natural Moroccan phosphate (Boucraa region) as a raw material. Despite its successful preparation, the obtained HAp was contaminated by several metallic cations (mostly Cd, Pb, Sn, Ti, Mn, Mg, Fe, and Al) migrated from the natural rocks during the digestion process, inhibiting HAp application in several sectors. To minimize the existence of these elements, the dissolution–precipitation technique (DP) was investigated as a non-selective purification process. Following the initial DP cycle conducted on the precipitated HAp, the removal efficiency was approximately 60% for Al, Fe, Mg, Mn, and Ti and 90% for Cd and Pb. After three consecutive DP cycles, notable improvement in the removal efficiency was observed, reaching 66% for Fe, 69% for Mg, 73% for Mn, and 74% for Al, while Cd, Pb, and Ti were totally removed. In the second part of this study, the purified HAp was digested using sulfuric acid to produce high-quality phosphoric acid (PA) and gypsum (GP). The elemental analysis of the PA indicates a removal efficiency of approximately 89% for Fe and over 94% for all the examined cations. In addition, the generated GP was dominated by SO3 and CaO accompanied with minor impurities. Overall, this simple process proves to be practically useful, to reduce a broad spectrum of cationic impurities, and to be flexible to prepare valuable products such hydroxyapatite, phosphoric acid, and gypsum.

Funder

Researchers Supporting Project at King Saud University, Riyadh, Saudi Arabia

Publisher

MDPI AG

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