Functionalized Cortical Bone‐Inspired Composites Adapt to the Mechanical and Biological Properties of the Edentulous Area to Resist Fretting Wear

Author:

Wang ZhongYi1ORCID,Xiang QianRong1,Tan Xin12,Zhang YaDong3,Zhu HaoQi4ORCID,Pu Jian5,Sun JiKui1,Sun ManLin1,Wang YingKai1,Wei Qiang6ORCID,Yu HaiYang1ORCID

Affiliation:

1. State Key Laboratory of Oral Diseases National Clinical Research Center for Oral Diseases West China Hospital of Stomatology Sichuan University Chengdu Sichuan 610041 China

2. Chongqing Key Laboratory of Oral Diseases and Biomedical Sciences College of Stomatology Chongqing Medical University Chongqing 400016 China

3. Research and Development Department Zhejiang PEKK‐X Advanced Materials Technology Co., Ltd. Shaoxing Zhejiang 312000 China

4. Department of Physics City University of Hong Kong Hong Kong Special Administrative Region of the People's Republic of China Kowloon 999077 China

5. School of Mechanical Engineering Southwest Jiaotong University Chengdu Sichuan 610031 China

6. College of Polymer Science and Engineering State Key Laboratory of Polymer Materials and Engineering Sichuan University Chengdu Sichuan 610065 China

Abstract

AbstractDental implants with long‐term success of osseointegration have always been the goal, however, difficulties exist. The accumulation of fretting damage at the implant–bone interface often gets overlooked. Commonly used titanium is approximately 7‐fold harder and stiffer than cortical bone. Stress shielding caused by the mismatching of the elastic modulus aggravates fretting at the interface, which is accompanied by the risk of the formation of proinflammatory metal debris and implant loosening. Thus, the authors explore functionalized cortical bone‐inspired composites (FCBIC) with a hierarchical structure at multiple scales, that exhibit good mechanical and biological adaptivity with cortical bone. The design is inspired by nature, combining brittle minerals with organic molecules to maintain machinability, which helps to acquire excellent energy‐dissipating capability. It therefore has the comparable hardness and elastic modulus, strength, and elastic‐plastic deformation to cortical bone. Meanwhile, this cortical bone analogy exhibits excellent osteoinduction and osseointegration abilities. These two properties also facilitate each other to resist fretting wear, and therefore improve the success rate of implantation. Based on these results, the biological–mechanical co‐operation coefficient is proposed to describe the coupling between these two factors for designing the optimized dental implants.

Funder

National Natural Science Foundation of China

Sichuan University

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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