Development and Prospects of Zirconia 3D Printing for Artificial Prosthesis Applications

3D打印 桥接(联网) 纳米技术 过程开发 脚手架 光致聚合物 过程(计算) 可扩展性 可靠性(半导体) 立方氧化锆 研磨 计算机科学 工艺工程 机械工程 制造工艺 工艺验证 材料科学 快速成型 流变学 耐久性 制造工程 烧结 生物相容性材料 泥浆 工艺优化
作者
H Lee,D G Lee,Jiyu Hyun,Hyun Su Park,Gun‐Jae Jeong,Kwang-Ho Jo,Sang‐Kyu Lee,Kyoung-Jun Jang,Suk Ho Bhang,Taekyung Yu
出处
期刊:Chemical Reviews [American Chemical Society]
标识
DOI:10.1021/acs.chemrev.5c00650
摘要

Artificial prosthetic manufacturing is moving toward patient-specific design and production, and zirconia-based three-dimensional printing is emerging as a promising approach because of its mechanical properties and biocompatibility. Yet the step from laboratory development to clinical use is still limited by the gap between laboratory-scale process optimization and clinically relevant validation of performance, reproducibility, and long-term reliability. This review provides an application-oriented overview of zirconia-based photopolymerization additive manufacturing for dental, orthopedic, and scaffold applications, discussing relevant functional requirements alongside key processing parameters, postprocessing steps, and quality-critical variables. We outline major bottlenecks, such as optical scattering and slurry rheology during fabrication, as well as defects and dimensional deviations introduced during debinding and sintering, and we discuss recent performance-oriented strategies, including triply periodic minimal surface (TPMS) architectures and functionally graded additive manufacturing (FGAM) routes. Finally, we highlight the critical requirements for clinical translation, including qualification-ready process control, lot-to-lot manufacturing consistency, and robust durability validation under clinically relevant conditions. Taken together, these aspects establish a process-defect-performance relationship, where photopolymerization parameters govern defect evolution during debinding and sintering and, ultimately, determine the mechanical reliability and clinical performance of zirconia-based prostheses. Addressing these challenges will be essential for bridging the gap between laboratory-scale demonstrations and the scalable production of patient-specific zirconia prostheses.
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