Liu Jingke, Linsley Chase S, Su Yingchao, Abd-Elaziem Walaa, Pan Shuaihang, Sokoluk Maximilian, Griebel Adam, Chen Guancheng, Zeng Yuxin, Murali Narayanan, Bialo Sarah, Jiang Andrew, Wu Benjamin M, Zhu Donghui, Li Xiaochun
Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, California 90024, United States.
ZanoMed Inc, Los Angeles, California 90731, United States.
ACS Appl Mater Interfaces. 2024 Sep 25;16(38):50125-50138. doi: 10.1021/acsami.4c04714. Epub 2024 Sep 16.
Zinc-based alloys, specifically Zn-Mg, have garnered considerable attention as promising materials for biodegradable implants due to their favorable mechanical strength, appropriate corrosion rate, and biocompatibility. Nevertheless, the alloy's lack of mechanical stability and integrity, resulting from ductility loss induced by age hardening at room temperature, hampers its practical bioapplication. In this study, ceramic nanoparticles have been successfully incorporated into the Zn-Mg alloy system, leading to a significant improvement in long-term stability as well as mechanical strength and ductility. In addition, this study represents the first investigation of Zn-based nanocomposites both and to comprehend the influence of nanoparticles on the degradation behavior and biocompatibility of the Zn system. The findings indicate that the incorporation of WC nanoparticles effectively refines and stabilizes the degradation behavior of Zn-Mg without negatively impacting the cytocompatibility of the alloy. The subcutaneous implantation and femoral implantation further prove the benefits of nanoparticle incorporation and found no negative effects. Collectively, Zn-Mg-WC nanocomposites yield great potential for implant usage.
锌基合金,特别是锌镁合金,因其良好的机械强度、合适的腐蚀速率和生物相容性,作为可生物降解植入物的有前景材料而备受关注。然而,由于室温下时效硬化导致的延展性损失,该合金缺乏机械稳定性和完整性,这阻碍了其实际生物应用。在本研究中,陶瓷纳米颗粒已成功地融入锌镁合金体系,从而显著提高了长期稳定性以及机械强度和延展性。此外,本研究首次对锌基纳米复合材料进行了 和 的研究,以了解纳米颗粒对锌体系降解行为和生物相容性的影响。研究结果表明,WC 纳米颗粒的加入有效地细化并稳定了锌镁合金的降解行为,而不会对合金的细胞相容性产生负面影响。皮下植入和股骨植入进一步证明了加入纳米颗粒的益处,且未发现负面影响。总体而言,锌镁碳化钨纳米复合材料在植入物应用方面具有巨大潜力。