Formation of Amorphous Iron‐Calcium Phosphate with High Stability

Author:

Chen Song1ORCID,Liu Dachuan1,Fu Le2,Ni Bing3,Chen Zongkun3,Knaus Jennifer3,Sturm Elena V.34,Wang Bohan2,Haugen Håvard Jostein5,Yan Hongji678,Cölfen Helmut3ORCID,Li Bin1910

Affiliation:

1. Orthopedic Institute Department of Orthopaedic Surgery The First Affiliated Hospital School of Biology & Basic Medical Sciences Suzhou Medical College Soochow University Suzhou Jiangsu 215006 P. R. China

2. School of Materials Science and Engineering Central South University Changsha 410017 P. R. China

3. Physical Chemistry Department of Chemistry University of Konstanz Universitätsstraße 10 78457 Konstanz Germany

4. Section Crystallography Department of Geo‐ and Environmental Sciences Ludwigs‐Maximilians‐University Munich Theresienstr. 41 80333 Munich Germany

5. Department of Biomaterials Institute for Clinical Dentistry University of Oslo PO Box 1109 Blindern Oslo 0376 Norway

6. Department of Medical Cell Biology Uppsala University Uppsala 752 36 Sweden

7. AIMES – Center for the Advancement of Integrated Medical and Engineering Sciences at Karolinska Institutet and KTH Royal Institute of Technology Stockholm 171 77 Sweden

8. Department of Neuroscience Karolinska Institutet Stockholm 171 77 Sweden

9. Collaborative Innovation Center of Hematology Soochow University Suzhou Jiangsu 215006 P.R.China

10. Department of Orthopaedic Surgery The Affiliated Haian Hospital of Nantong University Haian,Nantong Jiangsu 226600 P.R.China

Abstract

AbstractAmorphous iron‐calcium phosphate (Fe‐ACP) plays a vital role in the mechanical properties of teeth of some rodents, which are very hard, but its formation process and synthetic route remain unknown. Here, the synthesis and characterization of an iron‐bearing amorphous calcium phosphate in the presence of ammonium iron citrate (AIC) are reported. The iron is distributed homogeneously on the nanometer scale in the resulting particles. The prepared Fe‐ACP particles can be highly stable in aqueous media, including water, simulated body fluid, and acetate buffer solution (pH 4). In vitro study demonstrates that these particles have good biocompatibility and osteogenic properties. Subsequently, Spark Plasma Sintering (SPS) is utilized to consolidate the initial Fe‐ACP powders. The results show that the hardness of the ceramics increases with the increase of iron content, but an excess of iron leads to a rapid decline in hardness. Calcium iron phosphate ceramics with a hardness of 4 GPa can be achieved, which is higher than that of human enamel. Furthermore, the ceramics composed of iron‐calcium phosphates show enhanced acid resistance. This study provides a novel route to prepare Fe‐ACP, and presents the potential role of Fe‐ACP in biomineralization and as starting material to fabricate acid‐resistant high‐performance bioceramics.

Funder

National Natural Science Foundation of China

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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