氧化锆增强二硅酸锂陶瓷的表面处理对树脂胶结物粘附性的影响。

Brazilian dental journal Pub Date : 2024-03-22 eCollection Date: 2024-01-01 DOI:10.1590/0103-6440202405674
Mirko A R Aguilera, Américo C Bortolazzo, Lourenço Correr-Sobrinho, Rafael L X Consani
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引用次数: 0

摘要

本研究验证了氧化锆增强二硅酸锂陶瓷与树脂水泥粘结后的表面处理效果。根据处理方法(n=10)对陶瓷块进行了划分:FA+SRX(氟酸 + 硅烷 RX)、FA+MDP(氟酸 + MDP)、FA+SCF+MDP(氟酸 + 硅烷 CF + MDP)、FA+MEP(氟酸 + MEP)和 MEP(自蚀底漆)。在陶瓷块中制作树脂水泥圆柱体,用 1,200 mW/cm² 光激活 40 秒,在 37°C 的水中保存 24 小时,并通过微剪切强度测试、光学失效描述性分析(%)、表面特征(扫描电镜)和接触角(测角仪)进行评估。其他样品在 5°C 至 55°C 之间进行了 10,000 次热循环。粘接强度数据采用双向方差分析和 Tukey 检验。接触角采用单因素方差分析和 Games-Howell 检验(5%)。24 小时后,MEP 的粘结强度较高,FA+SRX 的粘结强度较低。FA+MDP 和 FA+SCF+MDP 显示出相似的值,FA+MEP 处于中间位置。热循环后,FA+SCF+MDP、FA+MEP 和 MEP 的值较高,FA+SRX 的值较低,FA+MDP 处于中间位置。如果对时间段进行比较,FA+MDP、FA+SCF+MDP、FA+MEP 和 MEP 在 24 小时内的数值较高,而 FA+SRX 的数值相近。扫描电子显微镜显示,FA+SCF+MDP 处理时,表面呈网状,晶体暴露。使用 MEP 时获得的表面保持性较差,而其他处理方法则会产生中间不规则性。总之,表面处理和热循环对氧化锆增强硅酸锂陶瓷的粘接强度和接触角有不同的促进作用。失效主要是粘附性失效,陶瓷表面具有不同程度的粗糙度和晶体的选择性暴露。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Surface treatments of the zirconia-reinforced lithium disilicate ceramic in the adhesion to the resin cement.

This study verified the effect of surface treatments of the zirconia-reinforced lithium disilicate ceramic bonded to resin cement. Ceramic blocks were divided according to treatments (n=10): FA+SRX (Fluoric acid + silane RX), FA+MDP (Fluoric acid + MDP), FA+SCF+MDP (Fluoric acid + silane CF + MDP), FA+MEP (Fluoric acid + MEP), and MEP (Self-etch primer). Resin cement cylinders were made in the ceramic blocks, photoactivated with 1,200 mW/cm² for 40s, stored in water at 37°C for 24h, and evaluated by the microshear strength test, optical failure descriptive analysis (%), surface characterization (SEM) and contact angle (Goniometer). Other samples were submitted to 10,000 thermocycles between 5°C and 55°C. Bond strength data were submitted to two-way ANOVA and Tukey's test. Contact angle to one-way ANOVA and Games-Howell's test (5%). At 24h, MEP showed higher bond strength, and FA+SRX the lower. FA+MDP and FA+SCF+MDP showed similar values and FA+MEP was intermediate. After thermocycling, FA+SCF+MDP, FA+MEP, and MEP showed higher values, and FA+SRX the lower while FA+MDP was intermediate. When the periods were compared, FA+MDP, FA+SCF+MDP, FA+MEP, and MEP showed higher values for 24h while FA+SRX was similar. SEM showed retentive surface and crystal exposure when treated with FA+SCF+MDP. The less retentive surface was obtained with MEP, and the other treatments promoted intermediate irregularities. In conclusion, surface treatment and thermocycling promoted different values of adhesive strength and contact angle in a zirconia-reinforced lithium silicate ceramic. Failures were predominantly adhesive, and the ceramic surface was characterized by different levels of roughness and selective exposure of crystals.

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