Elsaka Shaymaa E, Elnaghy Amr M
Department of Dental Biomaterials, Faculty of Dentistry, Mansoura University, Mansoura, Egypt.
Department of Conservative Dentistry and Endodontics, Faculty of Dentistry, Mansoura University, Mansoura, Egypt.
Dent Mater. 2016 Jul;32(7):908-14. doi: 10.1016/j.dental.2016.03.013. Epub 2016 Apr 14.
The aim of this study was to assess the mechanical properties of recently introduced zirconia reinforced lithium silicate glass-ceramic.
Two types of CAD/CAM glass-ceramics (Vita Suprinity (VS); zirconia reinforced lithium silicate and IPS e.max CAD (IC); lithium disilicate) were used. Fracture toughness, flexural strength, elastic modulus, hardness, brittleness index, and microstructures were evaluated. Data were analyzed using independent t tests. Weibull analysis of flexural strength data was also performed.
VS had significantly higher fracture toughness (2.31±0.17MPam(0.5)), flexural strength (443.63±38.90MPa), elastic modulus (70.44±1.97GPa), and hardness (6.53±0.49GPa) than IC (P<0.001). On the other hand, VS glass-ceramic revealed significantly a higher brittleness index (2.84±0.26μm(-1/2)) (lower machinability) than IC glass-ceramic (P<0.05). VS demonstrated a homogeneous fine crystalline structure while, IC revealed a structure with needle-shaped fine-grained crystals embedded in a glassy matrix. The VS glass-ceramic revealed a lower probability of failure and a higher strength than IC glass-ceramic according to Weibull analysis.
The VS zirconia reinforced lithium silicate glass-ceramic revealed higher mechanical properties compared with IC lithium disilicate glass-ceramic.
本研究旨在评估新推出的氧化锆增强硅酸锂微晶玻璃的力学性能。
使用两种类型的CAD/CAM微晶玻璃(维他思普林尼(VS);氧化锆增强硅酸锂和义获嘉e.max CAD(IC);二硅酸锂)。对断裂韧性、弯曲强度、弹性模量、硬度、脆性指数和微观结构进行评估。使用独立t检验分析数据。还对弯曲强度数据进行了威布尔分析。
VS的断裂韧性(2.31±0.17MPam(0.5))、弯曲强度(443.63±38.90MPa)、弹性模量(70.44±1.97GPa)和硬度(6.53±0.49GPa)均显著高于IC(P<0.001)。另一方面,VS微晶玻璃的脆性指数(2.84±0.26μm(-1/2))(加工性能较低)显著高于IC微晶玻璃(P<0.05)。VS呈现出均匀的精细晶体结构,而IC则呈现出一种在玻璃基体中嵌入针状细晶粒晶体的结构。根据威布尔分析,VS微晶玻璃的失效概率较低,强度高于IC微晶玻璃。
与IC二硅酸锂微晶玻璃相比,VS氧化锆增强硅酸锂微晶玻璃具有更高的力学性能。