Aldhuwayhi Sami
Department of Restorative Dentistry and Prosthodontics, College of Dentistry, Majmaah University, Al Majmaah 11952, Saudi Arabia.
Bioengineering (Basel). 2025 May 19;12(5):543. doi: 10.3390/bioengineering12050543.
Zirconia dental implants have emerged as a transformative material in implantology, offering a biocompatible, esthetic, and durable alternative to traditional titanium implants. This comprehensive review explores the key properties of zirconia, including high fracture resistance, esthetic superiority, and low bacterial affinity. The ability of zirconia to integrate with bone through osseointegration, coupled with its resistance to plaque and inflammation, results in a product that is particularly suitable for patients with metal sensitivities or high esthetic demands. However, challenges such as brittleness and complex manufacturing processes persist. Advances in surface modification techniques and material optimization are poised to address these limitations, paving the way for broader applications. The purpose of this descriptive review was to emphasize the mechanical, antibacterial, osteointegration and survival rates of zirconia implants. This paper also summarizes findings from recent empirical studies, highlighting zirconia's clinical performance, biological responses, and future potential as a mainstream implant material.
氧化锆牙科植入物已成为种植学领域的一种变革性材料,为传统钛植入物提供了一种生物相容性好、美观且耐用的替代品。这篇综述探讨了氧化锆的关键特性,包括高抗断裂性、美学优势和低细菌亲和力。氧化锆通过骨结合与骨整合的能力,以及其对菌斑和炎症的抵抗力,使其成为一种特别适合对金属敏感或有高美学需求患者的产品。然而,诸如脆性和复杂制造工艺等挑战依然存在。表面改性技术和材料优化方面的进展有望解决这些限制,为更广泛的应用铺平道路。这篇描述性综述的目的是强调氧化锆植入物的机械性能、抗菌性能、骨整合能力和存活率。本文还总结了近期实证研究的结果,突出了氧化锆作为主流植入材料的临床性能、生物学反应及未来潜力。