Resistensi Fraktur pada Mahkota Gigi Tiruan Cekat Berbahan Zirkonia : Literature Review
DOI:
https://doi.org/10.62383/vimed.v3i1.2614Keywords:
Crown, Fixed Prosthodontic, Fracture Resistance, Retainer, ZirconaAbstract
Introduction:All-zirconia crowns are the strongest ceramic artificial crowns, made from zirconium, a silicate compound (ZrSiO4) and resistant to high temperatures. The advantages of zirconia include good mechanical properties, biocompatibility, and high corrosion resistance. Zirconia has disadvantages, such as a lack of aesthetic similarity to natural teeth. Methods and Results: Search for published articles on Elsevier, PubMed and Science Direct using predetermined keywords, namely crown,fracture resistance, and zirconiaThis literature review utilizes literature published between 2020 and 2025, accessible in full-text PDF format. Based on data searches using predetermined keywords, data was searched for the last five years, resulting in four selected articles. Discussion: Fracture and loss of retention are problems that can occur in zirconia crowns. Several factors influence the fracture resistance of clinical crowns, such as the load received, the preparation results, material thickness, cement used, marginal adaptation and the zirconia content used. Conclusion: Zirconia crowns are the strongest ceramic artificial crowns. Fracture and loss of retention are problems that can occur in zirconia crowns. Several factors influence the fracture resistance of clinical crowns, such as the load received, the preparation results, marginal adaptation and the zirconia content used.
References
Abad-Coronel, C., Paladines, Á., Ulloa, A. L., Paltán, C. A., & Fajardo, J. I. (2023). Comparative fracture resistance analysis of translucent monolithic zirconia dioxide milled in a CAD/CAM system. Ceramics, 6(2), 1179–1190. https://doi.org/10.3390/ceramics6020071
Abushanan, A., Sharanesha, R. B., Aljuaid, B., Alfaifi, T., & Aldurayhim, A. (2022). Fracture resistance of primary zirconia crowns: An in vitro study. Children, 9(1), 1–7. https://doi.org/10.3390/children9010077
Alzhairi, A., Hamdy, A., Abdelrahman, M., & Hamza, F. (2024). Fracture resistance of bi-layered and translucent zirconia after thermo-mechanical fatigue. Egyptian Dental Journal, 70(2), 1797–1811. https://doi.org/10.21608/edj.2024.270327.2941
Badr, Z., Culp, L., Duqum, I., Lim, C. H., Zhang, Y., & Sulaiman, T. A. (2022). Survivability and fracture resistance of monolithic and multi-yttria-layered zirconia crowns as a function of yttria content: A mastication simulation study. Journal of Esthetic and Restorative Dentistry, 34(4), 633–640. https://doi.org/10.1111/jerd.12907
Bani-Hani, T., Al-Fodeh, R. S., Al-Wahadni, A. M., Abu-Alhaija, E. S., & Al-Hakam, M. (2025). An in-vitro investigation into the fracture resistance of prefabricated and custom-made zirconia crowns for permanent molars in children. Dentistry Journal, 13(2). https://doi.org/10.3390/dj13020064
Chaturvedi, S., Alqahtani, T., Alsolami, S., Alqahtani, A., Das, G., & Alsubaiy, E. (2021). Fracture resistance of CAD-CAM all-ceramic surveyed crowns with different occlusal rest seat designs. Journal of Advanced Prosthodontics, 13(1), 36–45. https://doi.org/10.4047/jap.2021.13.1.36
Chen, P., Elamin, E., Ahmed, A. S., Givan, D. A., Fu, C., & Lawson, N. C. (2024). The effect of restoration thickness on the fracture resistance of 5 mol% yttria-containing zirconia crowns. Journal of Prosthodontics, 1–10.
D’Addazio, G., Santilli, M., Rollo, M. L., Cardelli, P., Rexhepi, I., Murmura, G., Husain, N. A. H., Sinjari, B., Traini, T., Özcan, M., & Caputi, S. (2020). Fracture resistance of zirconia-reinforced lithium silicate ceramic crowns cemented with conventional or adhesive systems: An in vitro study. Materials, 13(9). https://doi.org/10.3390/MA13092012
Issn, O., & Res, I. J. A. (2025). Research article connectors: The cornerstone of strength and longevity in fixed partial dentures. ISSN (O), 13(07), 414–422. https://doi.org/10.21474/IJAR01/21334
Jasim, H. H., Findakly, M. B., Mahdi, N. A., & Mutar, M. T. (2020). Effect of reduced occlusal thickness with two margin designs on fracture resistance of monolithic zirconia crowns. European Journal of Dentistry, 14(2), 245–249. https://doi.org/10.1055/s-0040-1709342
Jurado, C. A., Sayed Ahmed, A., Lawson, N. C., Azpiazu-Flores, F. X., Green, C., & Cho, S. H. (2024). Fracture resistance of zirconia surveyed crowns with four different occlusal rest seat designs. Journal of Prosthodontics, 33(5), 484–489. https://doi.org/10.1111/jopr.13737
Kim, S. H., Yeo, M. Y., Choi, S. Y., & Park, E. J. (2022). Fracture resistance of monolithic zirconia crowns depending on different marginal thicknesses. Materials, 15(14), 1–10. https://doi.org/10.3390/ma15144861
Parnaadji Rahardyan, & Pujiastuti Peni. (2025). Achieving natural aesthetics with zirconia restorations in anterior teeth: A case study. World Journal of Advanced Research and Reviews, 26(1), 2653–2658. https://doi.org/10.30574/wjarr.2025.26.1.1274
Prawesthi, E., & Handayani, S. (2023). Pembuatan mahkota tiruan all zirconia multilayered CAD/CAM pada pasien dengan dukungan gigi implan tipe endosseous (Laporan Kasus). Jurnal Ilmiah Dan Teknologi Kedokteran Gigi, 19(2), 86–92. https://doi.org/10.32509/jitekgi.v19i2.2604
Refaie, A., Bourauel, C., Fouda, A. M., Keilig, L., & Singer, L. (2023). The effect of cyclic loading on the fracture resistance of 3D-printed and CAD/CAM milled zirconia crowns—an in vitro study. Clinical Oral Investigations, 27(10), 6125–6133. https://doi.org/10.1007/s00784-023-05229-2
Schriwer, C., Gjerdet, N. R., Arola, D., & Øilo, M. (2021). The effect of preparation taper on the resistance to fracture of monolithic zirconia crowns. Dental Materials, 37(8), e427–e434. https://doi.org/10.1016/j.dental.2021.03.012
Sinamo, S., Caesarina, D., Maghfira, V., & Halim, S. (2022). Laporan kasus: Gigi tiruan cekat. Prima Journal of Oral and Dental Sciences, 5(1), 63–68. https://doi.org/10.34012/primajods.v5i1.2879
Suci, A. W. E., Ratnasari, D., Dwisaptarini, A. P., & Elline, E. (2023). Fracture toughness of monolithic zirconia and lithium disilicate CAD/CAM endocrown. Journal of Indonesian Dental Association, 6(2), 105. https://doi.org/10.32793/jida.v6i3.968
Tanudjaja, P. K., Bonifacius, S., & Rikmasari, R. (2022). The comparison of fracture resistance between low translucent and ultra-high translucent monolithic zirconia crown. European Dental Research and Biomaterials Journal, 03(01/02), 026–029. https://doi.org/10.1055/s-0043-1768175
Tavakolizadeh, S., Yazdani, N., Ghoveizi, R., Mohammadi, A., Beyabanaki, E., & Koulivand, S. (2023). Fracture resistance of zirconia restorations with four different framework designs. Frontiers in Dentistry, 20, 2–7. https://doi.org/10.18502/fid.v20i2.12197
Tekin, Y. H., & Hayran, Y. (2020). Fracture resistance and marginal fit of the zirconia crowns with varied occlusal thickness. Journal of Advanced Prosthodontics, 12(5), 283–290. https://doi.org/10.4047/jap.2020.12.5.283
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