Room-temperature growth of fluorapatite/CaCO3 heterogeneous structured composites inspired by human tooth

摘要

Organisms can synthesize heterogeneous structures with excellent mechanical properties through mineralization, the most typical of which are teeth. The tooth is an extraordinarily resilient bi-layered material that is composed of external enamel perpendicular to the tooth surface and internal dentin parallel to the tooth surface. The synthesis of enamel-like heterostructures with good mechanical properties remains an elusive challenge. In this study, we applied a biomimetic mineralization method to grow fluorapatite/CaCO3 (FAP/CaCO3) heterogeneous structured thin films that mimic their biogenic counterparts found in teeth through a three-step pathway: coating a polymer substrate, growing a layered calcite film, and mineralization of a fluorapatite columnar array on the calcite layer. The synthetic heterostructure composites combine well and exhibit good mechanical properties comparable to their biogenic counterparts. The FAP/CaCO3 heterogeneous structured composite exhibits excellent mechanical properties, with a hardness and Young’s modulus of 1.99 ± 0.02 GPa and 47.5 ± 0.6 GPa, respectively. This study provides a reasonable new idea for unique heterogeneous structured materials designed at room temperature.

出版物
Rsc Advances
平航
平航
研究员

武汉理工大学材料复合新技术全国重点实验室研究员、博士生导师,国家级高层次青年人才,主要研究方向是生物过程启示的限域制备新技术与陶瓷材料低温制备新技术。

邹朝勇
邹朝勇
研究员

武汉理工大学材料复合新技术国家重点实验室研究员,国家级高层次人才(青年项目),湖北省高层次人才,主要研究方向是生物过程启示的制备技术

王为民
王为民
首席教授、博士生导师

武汉理工大学首席教授,博士生导师。

傅正义
傅正义
中国工程院院士

中国工程院院士,武汉理工大学教授。