二硅酸锂体系微晶玻璃的结构、力学性能及增强技术研究OA
Structure,Mechanical Properties and Reinforcement Technologies of Lithium Disilicate Glass-ceramics
二硅酸锂(Li2Si2O5)微晶玻璃是目前已知抗折强度最高且研究历史最为悠久的微晶玻璃材料.该材料兼具优异的光学性能、力学性能及良好的生物相容性,已在齿科修复、光敏材料、磁盘基片等领域获得广泛应用.相较于传统齿科修复材料,二硅酸锂微晶玻璃在美学效果、力学性能及制备工艺等方面展现出显著优势,已成为最具发展前景的齿科修复材料之一.本文系统梳理了二硅酸锂微晶玻璃的发展历程及其微观结构特征,探讨了化学组成与热处理工艺对其结构与性能的影响规律,重点综述了氧化锆增韧、离子交换增强及物理钢化三种力学性能增强技术的研究进展,并对其未来发展方向进行了展望.
[Significance]Lithium disilicate glass-ceramics possess the highest known flexural strength to date,along with excellent optical properties and promising biocompatibility.They have been widely used in dental restoration,photosensitive materials,and magnetic disk substrates and so on.Compared with traditional dental restorative materials,they exhibit significant advantages in aesthetic effects,mechanical properties and fabrication processes,making them one of the most promising candidates for dental restoration.Systematic study on their microstructure,mechanical properties and reinforcement technologies is of great importance for promoting theoretical development and practical application of high-performance glass-ceramics. [Progress]Regarding chemical composition,the addition of Al2O3 and K2O eliminates immiscibility,improving glass homogeneity and chemical stability.Alkaline earth metal oxides,such as ZnO,MgO and CaO,act as network modifiers,influencing crystal morphology and mechanical strength.Rare earth oxides,like Y2O3 and La2O3,serve as network former and can inhibit crystallization.P2O5,TiO2 and ZrO2 act as nucleating agents,providing heterogeneous nucleation sites and promoting the precipitation of Li2Si2O5 crystals.In terms of heat treatment processes,multi-step schedules(e.g.,two-step and three-step methods)effectively regulate the crystal phase,grain size,crystal aspect ratio and degree of crystallinity,resulting in an interlocking acicular microstructure with significantly enhanced mechanical strength.Regarding mechanical reinforcement techniques,zirconia toughening utilizes the volume expansion and microcrack dispersion associated with the tetragonal-to-monoclinic phase transformation of ZrO2.Ion exchange strengthening replaces Li+with larger ions,such as Rb+and Cs+,generating a compressive stress layer on the surface and hence increasing the flexural strength from 169 MPa to 493 MPa.Physical tempering introduces compressive stress on the material surface through rapid cooling(e.g.,oil quenching),increasing the flexural strength from 287 MPa to 576 MPa and the fracture toughness from 2.03 MPa·m1/2 to 4.02 MPa·m1/2. [Conclusion and prospects]Lithium disilicate glass-ceramics exhibit excellent mechanical properties,due to their acicular interlocking microstructure and the residual compressive stress arising from thermal expansion mismatch between the crystals and the glass phase.It is found that optimizing chemical composition and heat treatment processes enables effective regulation of structure and properties,while there are three reinforcement techniques,i.e.,zirconia toughening,ion exchange strengthening and physical tempering,can be used to significantly enhance mechanical strength.These glass-ceramics will have broad applications in the fields,such as bone joint repair,high-end tableware,building materials and electronic mobile device back panels.Future research should be focused on three aspects,including developing low-cost fabrication technologies to expand application scope,exploring anion modification approaches such as nitrogen and fluorine to further improve performance and conducting in-depth exploration of novel reinforcement processes,particularly physical tempering using different cooling media.
唐永;夏培宗;高存东;王伟东;张超;高存吉;何勇涛;黄新华
山东景耀玻璃集团有限公司,山东 临沂 276624山东景耀玻璃集团有限公司,山东 临沂 276624山东景耀玻璃集团有限公司,山东 临沂 276624山东景耀玻璃集团有限公司,山东 临沂 276624山东景耀玻璃集团有限公司,山东 临沂 276624山东景耀玻璃集团有限公司,山东 临沂 276624景德镇陶瓷大学,江西 景德镇 333403景德镇陶瓷大学,江西 景德镇 333403
化学化工
二硅酸锂微晶玻璃微观结构力学性能增强技术
lithium disilicateglass-ceramicmicrostructuremechanical propertiesstrengthening techniques
《陶瓷学报》 2026 (3)
498-505,8
国家自然科学基金(U25A20247)江西省自然科学基金项目(20232ACB204009)江西省教育厅科学技术研究项目(GJJ201319).
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