RSS-Feed abonnieren

DOI: 10.1055/s-0045-1812863
Comparison of Surface Roughness of Zirconia Polished with Novel Silicon Carbide Polishing Paste and Diamond Polishing Paste
Autor*innen
Funding This study was supported by the Dental Research Fund, Faculty of Dentistry, Chulalongkorn University.
Abstract
Objective
The aim of this study was to newly develop a silicon carbide polishing paste that was comparable to or more effective than diamond polishing paste for the final polishing step of zirconia.
Materials and Methods
Fifty-two zirconia specimens were prepared, and polished with silicon carbide sandpaper to generate initial surface roughness. The surface roughness at baseline (Ra value) was measured by a profilometer and the specimens were randomly divided into six groups, which the first group (n = 2) was used to study the surface morphology at baseline. The second to fifth groups (n = 10/group) were polished for 30 seconds with different ratios of silicon carbide paste; silicon carbide:glycerin by weight: 1:1 (SiC1), 1.5:1 (SiC1.5), 2:1 (SiC2), and 2.5:1 (SiC2.5) according to their groups. The sixth group (n = 10) was polished for 30 seconds with diamond paste (Dia). Afterward, the Ra values were remeasured at every 30-second polishing interval up to a total polishing time of 120 seconds. Scanning electron microscopy (SEM) was used to examine the surface morphology of postpolished specimens and the abrasive particles.
Statistical Analysis
The differences in mean Ra values were analyzed using two-way repeated analysis of variance followed by least significant difference post hoc analysis. All tests were conducted at a significance level of 5% (p < 0.05).
Results
Within each group, the mean Ra values significantly decreased with longer polishing time (p < 0.05), except the SiC2.5 group at 120 seconds. Increasing silicon carbide concentration significantly decreased the Ra values (p < 0.05), with the exception of the SiC2.5 group. After 120 seconds, the SiC2 group demonstrated the lowest mean Ra value. The surface images investigated by SEM corresponded with their Ra values.
Conclusion
Polishing zirconia with a silicon carbide paste, silicon carbide:glycerin ratio of 2:1 by weight, for 120 seconds, yields the smoothest postpolished surface. Furthermore, the mean Ra value obtained with this paste is statistically comparable to that of the diamond paste. Thus, silicon carbide paste has the potential to be an efficient alternative to diamond paste for chairside polishing of zirconia.
Publikationsverlauf
Artikel online veröffentlicht:
11. November 2025
© 2025. The Author(s). This is an open access article published by Thieme under the terms of the Creative Commons Attribution License, permitting unrestricted use, distribution, and reproduction so long as the original work is properly cited. (https://creativecommons.org/licenses/by/4.0/)
Thieme Medical and Scientific Publishers Pvt. Ltd.
A-12, 2nd Floor, Sector 2, Noida-201301 UP, India
-
References
- 1 Yamockul S, Thamrongananskul N. Cerium oxide polishes lithium disilicate glass ceramic via a chemical-mechanical process. Eur J Dent 2023; 17 (03) 720-726
- 2 Rashid H. The effect of surface roughness on ceramics used in dentistry: a review of literature. Eur J Dent 2014; 8 (04) 571-579
- 3 Limpuangthip N, Poosanthanasarn E, Salimee P. Surface roughness and hardness of CAD/CAM ceramic materials after polishing with a multipurpose polishing kit: an in vitro study. Eur J Dent 2023; 17 (04) 1075-1083
- 4 Geduk ŞE, Sağlam G. The effect of whitening toothpastes on the surface properties and color stability of different ceramic materials. BMC Oral Health 2024; 24 (01) 1305
- 5 Onwubu SC, Mdluli PS. Comparative analysis of abrasive materials and polishing system on the surface roughness of heat-polymerized acrylic resins. Eur J Dent 2022; 16 (03) 573-579
- 6 Yamockul S, Thamrongananskul N, Poolthong S. Comparison of the surface roughness of feldspathic porcelain polished with a novel alumina-zirconia paste or diamond paste. Dent Mater J 2016; 35 (03) 379-385
- 7 Rani V, Mittal S, Sukhija U. An in vitro evaluation to compare the surface roughness of glazed, reglazed and chair side polished surfaces of dental porcelain. Contemp Clin Dent 2021; 12 (02) 164-168
- 8 Incesu E, Yanikoglu N. Evaluation of the effect of different polishing systems on the surface roughness of dental ceramics. J Prosthet Dent 2020; 124 (01) 100-109
- 9 O'Brien WJ. Abrasion, polishing, and bleaching. In: Dental Materials and Their Selection. 3rd ed.. Chicago: Quintessence Books; 2002: 156-164
- 10 Sarikaya I, Güler AU. Effects of different polishing techniques on the surface roughness of dental porcelains. J Appl Oral Sci 2010; 18 (01) 10-16
- 11 Li AC, Li B, González-Cataldo FJ. et al. Diamond under extremes. Mater Sci Eng Rep 2024; 161: 100857
- 12 Mahrous AA, Ellakany P, Abualsaud R. et al. Comparative study of the effectiveness of laboratory-formulated polishing pastes for two CAD/CAM ceramic restorative materials. J Prosthodont 2022; 31 (06) 529-536
- 13 Camacho GB, Vinha D, Panzeri H, Nonaka T, Gonçalves M. Surface roughness of a dental ceramic after polishing with different vehicles and diamond pastes. Braz Dent J 2006; 17 (03) 191-194
- 14 Al-Haj Husain N, Camilleri J, Özcan M. Effect of polishing instruments and polishing regimens on surface topography and phase transformation of monolithic zirconia: an evaluation with XPS and XRD analysis. J Mech Behav Biomed Mater 2016; 64: 104-112
- 15 Kheur M, Lakha T, Shaikh S. et al. A comparative study on simulated chairside grinding and polishing of monolithic zirconia. Materials (Basel) 2022; 15 (06) 2202
- 16 Paolone G, Moratti E, Goracci C, Gherlone E, Vichi A. Effect of finishing systems on surface roughness and gloss of full-body bulk-fill resin composites. Materials (Basel) 2020; 13 (24) 5657
- 17 Altınışık H, Özyurt E. Effect of different polishing systems on surface roughness and gloss values of single-shade resin composites. BMC Oral Health 2024; 24 (01) 1391
- 18 Ružbarský J. The influence of the wavelength of laser light on the non-contact measurement of the roughness of shiny cut surfaces on stainless steel A304 material. Appl Sci (Basel) 2024; 14 (06) 2420
- 19 Kukiattrakoon B, Hengtrakool C, Kedjarune-Leggat U. Effect of acidic agents on surface roughness of dental ceramics. Dent Res J (Isfahan) 2011; 8 (01) 6-15
- 20 Watanabe T, Miyazaki M, Takamizawa T, Kurokawa H, Rikuta A, Ando S. Influence of polishing duration on surface roughness of resin composites. J Oral Sci 2005; 47 (01) 21-25
- 21 Suratwala T, Steele W, Feit M. et al. Mechanism and simulation of removal rate and surface roughness during optical polishing of glasses. J Am Ceram Soc 2016; 99: 1974-1984
- 22 Gong Z, Jin Y, Cao Q. et al. High-efficiency precision polishing using fiber brush-shear-thickening fluid composites. Micromachines (Basel) 2024; 15 (12) 1497
- 23 Alam Z, Khan DA, Iqbal F, Jha S. Effect of polishing fluid composition on forces in ball end magnetorheological finishing process. Paper presented at: 10th International Conference on Precision, Meso, Micro and Nano Engineering (COPEN10); December 07–09, 2017; India
- 24 Bhattacharyya B, Doloi B. Chapter eight - advanced finishing processes. In: Modern Machining Technology Advanced, Hybrid, Micro Machining and Super Finishing Technology. Massachusetts: Academic Press; 2020: 675-743
- 25 Chen Y, Zhang L. Chapter three – mechanical polishing. In: Polishing of Diamond Materials Mechanisms, Modeling and Implementation. London: Springer; 2012: 25-42
- 26 Kefi I, Afreen M, Maria A, Iftikhar A, Fareed M, Adel S. Roles of abrasives in dentistry. J Baqai Med Univ 2008; 11 (01) 17-22
- 27 Shih CJ, Nesterenko VF, Meyers MA. Shear localization and comminution of granular and fragmented silicon carbide. J Phys IV 1997; 7 (03) 577-582
- 28 Tu J, Wang X, Liu B. Fragmentation behavior of diamond particles with different particle size and ratio under high pressure compaction. Ceram Int 2024; 50 (19) 36145-36155
- 29 Dubrovinskaia N, Dub S, Dubrovinsky L. Superior wear resistance of aggregated diamond nanorods. Nano Lett 2006; 6 (04) 824-826
- 30 Turkun LS, Canevi C, Degirmenci A, Boyacioglu H. Can wheel polishers improve surface properties and color stability of monochromatic resin composites?. BMC Oral Health 2024; 24 (01) 1199
- 31 Khan A, Hodson N, Altaie A. Polishing systems for modern aesthetic dental materials: a narrative review. Br Dent J 2024; 237 (08) 607-613
