Mechanical Properties of Orthodontic Cements and Their Behavior in Acidic Environments

被引:5
作者
Iosif, Cristina [1 ]
Cuc, Stanca [2 ]
Prodan, Doina [2 ]
Moldovan, Marioara [2 ]
Petean, Ioan [3 ]
Labunet, Anca [1 ]
Tudoran, Lucian Barbu [4 ,5 ]
Badea, Iulia Clara [6 ]
Man, Sorin Claudiu [7 ]
Badea, Mindra Eugenia [6 ]
Chifor, Radu [6 ]
机构
[1] Iuliu Hatieganu Univ Med & Pharm, Dept Prosthet Dent & Dent Mat, 32 Clin St, Cluj Napoca 400006, Romania
[2] Univ Babes Bolyai, Inst Chem Raluca Ripan, Dept Polymer Composites, 30 Fantanele St, Cluj Napoca 400294, Romania
[3] Univ Babes Bolyai, Fac Chem & Chem Engn, 11 Arany Janos St, Cluj Napoca 400028, Romania
[4] Babes Bolyai Univ, Biol & Geol Fac, Dept Mol Biol & Biotechnol, Electron Microscopy Lab, 5-7 Clin Str, Cluj Napoca 400006, Romania
[5] Natl Inst Res & Dev Isotop & Mol Technol, Electron Microscopy Integrated Lab, 65-103 Donath St, Cluj Napoca 400293, Romania
[6] Iuliu Hatieganu Univ Med & Pharm, Fac Dent Med, Dent Prevent Dept, Avram Iancu 31, Cluj Napoca 400083, Romania
[7] Iuliu Hatieganu Univ Med & Pharm, Mother & Child Dept, Dept Paediat 3, 2-4 Campeni St, Cluj Napoca 400217, Romania
关键词
orthodontic cements; acidic environment; mechanical properties; surface roughness; SHEAR BOND STRENGTH; ENAMEL; BRACKETS; PROFILE;
D O I
10.3390/ma15227904
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The present research is focused on three different classes of orthodontic cements: resin composites (e.g., BracePaste); resin-modified glass ionomer RMGIC (e.g., Fuji Ortho) and resin cement (e.g., Transbond). Their mechanical properties such as compressive strength, diametral tensile strength and flexural strength were correlated with the samples' microstructures, liquid absorption, and solubility in liquid. The results show that the best compressive (100 MPa) and flexural strength (75 Mpa) was obtained by BracePaste and the best diametral tensile strength was obtained by Transbond (230 MPa). The lowestvalues were obtained by Fuji Ortho RMGIC. The elastic modulus is relatively high around 14 GPa for BracePaste, and Fuji Ortho and Transbond have only 7 GPa. The samples were also subjected to artificial saliva and tested in different acidic environments such as Coca-Cola and Red Bull. Their absorption and solubility were investigated at different times ranging from 1 day to 21 days. Fuji Ortho presents the highest liquid absorption followed by Transbond, the artificial saliva has the best absorption and Red Bull has the lowest absorption. The best resistance to the liquids was obtained by BracePaste in all environments. Coca-Cola presents values four times greater than the ones observed for artificial saliva. Solubility tests show that BracePaste is more soluble in artificial saliva, and Fuji Ortho and Transbond are more soluble in Red Bull and Coca-Cola. Scanning electron microscopy (SEM) images evidenced a compact structure for BracePaste in all environments sustaining the lower liquid absorption values. Fuji Ortho and Transbond present a fissure network allowing the liquid to carry out in-depth penetration of materials. SEM observations are in good agreement with the atomic force microscopy (AFM) results. The surface roughness decreases with the acidity increasing for BracePaste meanwhile it increases with the acidity for Fuji Ortho and Transbond. In conclusion: BracePaste is recommended for long-term orthodontic treatment for patients who regularly consume acidic beverages, Fuji Ortho is recommended for short-term orthodontic treatment for patients who regularly consume acidic beverages and Transbond is recommended for orthodontic treatment over an average time period for patients who do not regularly consume acidic beverages.
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页数:15
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