Related Experiment Video
Updated: Oct 23, 2025

Effects of Mechanical Methods Used in Peri-implantitis Treatment on Implant Surface Decontamination and Roughness
Published on: March 14, 2025
The Influence of Different Surface Cleansing Agents on Shear Bond Strength of Contaminated Lithium Disilicate
Taksid Charasseangpaisarn1, Pattarawadee Krassanairawiwong1, Chanidapa Sangkanchanavanich1
1College of Dental Medicine, Rangsit University, Pathum Thani 12000, Thailand.
Materials And Methods:
Seventy LDS specimens were randomly divided into seven groups. The first group was noncontaminated surface (PC). The six other groups were contaminated with the saliva and silicone disclosing medium and treated with no surface cleansing agent (NC); phosphoric acid (PO); Ivoclean (IV); sodium hydroxide solution (NA); Restorative Cleansing Agent (RC); and hydrofluoric acid (HF). Then, LDS specimens were cementated with Panavia V5 to resin composite rod. Each specimen was subjected to an SBS test. The modes of failure was inspected under light microscope. The surface element of each group was examined by SEM-EDS.
Results:
The results were analyzed with one-way ANOVA and Tamhane's T2. The mean SBS value of NC was significantly lower than others (p < 0.05), and HF was significantly higher than others (p < 0.05). However, PC, PO, IV, NA, and RC were not significantly different from each other (p > 0.05). The mode of failure was mostly adhesive failure in every group. The surface showed similar amount of elements in every group.
Conclusions:
The SBS of LDS was reduced by saliva and silicone disclosing medium contamination which can be restored using acid- and alkaline-based surface cleansing agents before the cementation procedure.
More Related Videos
07:42Quasistatic Mechanical Testing for Computer-Aided Design and Manufacturing Occlusal Veneers Cemented to Milled Dentin Analog Material
Published on: December 20, 2024
03:02Impact of Fabrication Techniques and Polishing Procedures on Surface Roughness of Denture Base Resins
Published on: January 17, 2025