145
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

The effects of universal adhesive and innovative fabrication techniques of metal-ceramic restorations on repair strength of porcelain fracture with metal exposure

&
Pages 1102-1111 | Received 25 Oct 2018, Accepted 18 Jan 2019, Published online: 22 Mar 2019

References

  • Miyazaki T, Hotta Y. CAD-CAM systems available for the fabrication of crown and bridge restorations. Aust Dent J. 2011;56:97–106.
  • Azari A, Sakineh N. The evolution of rapid prototyping in dentistry: a review. Rapid Prototyp J. 2009;15:216–225.
  • Chua CK, Leong KF, Lim CS. Powder-based rapid prototyping systems. In: Chua CK, Leong KF, Lim CS, editors. Rapid prototyping. 3th ed. Singapore: World Scientific Publishing Co; 2010. p. 199–300.
  • Liu Q, Leu MC, Schmitt SM. Rapid prototyping in dentistry: technology and application. Int J Adv Manuf Technol. 2006;29:317–335.
  • Bae EJ, Kim JH, Kim WC, et al. Bond and fracture strength of metal-ceramic restorations formed by selective laser sintering. J Adv Prosthodont. 2014;6:266–271.
  • Kruth JP, Levy G, Klocke F, et al. Consolidation phenomena in laser and powder-bed based layered manufacturing. Ann CIRP. 2007;56:730–759.
  • Pham DT, Gault RS. A comparison of rapid prototyping technologies. Int J Mach Tool Manu. 1998;38:1257–1287.
  • Noort RV. The future of dental devices is digital. Dent Mater. 2012;28:3–12.
  • Shellabear M, Nyrhilä O. DMLS-Development history and state of the art. Paper presented at: ‘Proceedings of the 4th LANE’ Conference; 2004 September 21–24; Erlangen, Germany.
  • Sinirlioglu MC. Rapid manufacturing of dental and medical parts via LaserCUSING technology using titanium and Co-Cr powder materials. Paper presented at: US – TURKEY Workshop On Rapid Technologies; 2009; Turkey. p. 89–92.
  • Chung KH, Hwang YC. Bonding strengths of porcelain repair systems with various surface treatments. J Prosthet Dent. 1997;78:267–274.
  • dos Santos JG, Fonseca RG, Adabo GL, et al. Shear bond strength of metal-ceramic repair systems. J Prosthet Dent. 2006;96:165–173.
  • Haselton DR, Diaz-Arnold AM, Dunne JT. Shear bond strengths of 2 intraoral porcelain repair systems to porcelain or metal substrates. J Prosthet Dent. 2001;86:526–531.
  • Lacy AM. Clinical techniques for intraoral repair of fractured porcelain when metal is exposed. Quintessence Int. 1989;20:595–598.
  • Leibrock A, Degenhart M, Behr M, et al. In vitro study of the effect of thermo- and load-cycling on the bond strength of porcelain repair systems. J Oral Rehabil. 1999;26:130–137.
  • Mikeli A, Boening KW, Lißke B. Ceramic defects in metal-ceramic fixed dental prostheses made from Co-Cr and Au-Pt alloys: a retrospective study. Int J Prosthodont. 2015;28:487–489.
  • Özcan M, Pfeiffer P, Nergiz I. A brief history and current status of metal-and ceramic surface-conditioning concepts for resin bonding in dentistry. Quintessence Int. 1998;29:713–724.
  • Yesil ZD, Karaoglanoglu S, Akgül N, et al. Effect of different surfaces and surface applications on bonding strength of porcelain repair material. N Y State Dent J. 2007;73:28–32.
  • Siqueira F, Cardenas AM, Gutierrez MF, et al. Laboratory performance of universal adhesive systems for luting CAD/CAM restorative materials. J Adhes Dent. 2016;18:331–340.
  • Blum IR, Nikolinakos N, Lynch CD, et al. An in vitro comparison of four intra-oral ceramic repair systems. J Dent. 2012;40:906–912.
  • Corazza PH, Carvalho RFD, Souza RODAE, et al. Effect of aging type and aged unit on the repair strength of resin composite to feldspathic porcelain in testing microtensile bond strength. J Adhes Sci Technol. 2016;30:434–442.
  • Gourav R, Ariga P, Jain AR, et al. Effect of four different surface treatments on shear bond strength of three porcelain repair systems: an in vitro study. J Conserv Dent. 2013;16:208–212.
  • Kanat B, Cömlekoğlu ME, Cömlekoğlu MD, et al. Microshear bond strength and finite element analysis of resin composite adhesion to press-on-metal ceramic for repair actions after various conditioning methods. J Adhes Dent. 2014;16:63–70.
  • Kimmich M, Stappert CF. Intraoral treatment of veneering porcelain chipping of fixed dental restorations. A review and clinical application. J Am Dent Assoc. 2013;144:31–44.
  • Kumbuloglu O, User A, Toksavul S, et al. Intra-oral adhesive systems for ceramic repairs: a comparison. Acta Odontol Scand. 2003;61:268–272.
  • Özcan M. How to repair ceramic chipping or fracture in metal-ceramic fixed dental prostheses intraorally: step-by-step procedures. J Adhes Dent. 2014;16:491–492.
  • Özcan M, Valandro LF, Amaral R, et al. Bond strength durability of a resin composite on a reinforced ceramic using various repair systems. Dent Mater. 2009;25:1477–1483.
  • Reston EG, Filho SC, Arossi G, et al. Repairing ceramic restorations: final solution or alternative procedure? Oper Dent. 2008;33:461–466.
  • Sarac D, Sarac YS, Külünk S, et al. Effect of various surface treatments on the bond strength of porcelain repair. Int J Periodontics Restorative Dent. 2013;33:e120–e126.
  • Uzun İH, Malkoç MA, Polat NT, et al. The effect of repair protocols on shear bond strength to zirconia and veneering porcelain. J Adhes Sci Technol. 2016;30:1741–1753.
  • Üstün Ö, Büyükhatipoğlu IK, Seçilmiş A. Shear bond strength of repair systems to new CAD/CAM restorative materials. J Prosthodont. 2016;23:1–7.
  • Kinsel RP, Lin D. Retrospective analysis of porcelain failures of metal ceramic crowns and fixed partial dentures supported by 729 implants in 152 patients: patient-specific and implant-specific predictors of ceramic failure. J Prosthet Dent. 2009;101:388–394.
  • Özcan M, Niedermeier W. Clinical study on the reasons for and location of failures of metal-ceramic restorations and survival of repairs. Int J Prosthodont. 2002;15:299–302.
  • Lövgren N, Roxner R, Klemendz S, et al. Effect of production method on surface roughness, marginal and internal fit, and retention of cobalt-chromium single crowns. J Prosthet Dent. 2017;118:95–101.
  • Oyagüe RC, Osorio R, Osorio E, et al. The effect of surface treatments on the microroughness of laser-sintered and vacuum-cast base metal alloys for dental prosthetic frameworks. Microsc Res Tech. 2012;75:1206–1212.
  • Chang JC, Koh SH, Powers JM, et al. Tensile bond strengths of composites to a gold-palladium alloy after thermal cycling. J Prosthet Dent. 2002;87:271–276.
  • Valandro LF, Özcan M, Amaral R, et al. Effect of testing methods on the bond strength of resin to zirconia-alumina ceramic: microtensile versus shear test. Dent Mater J. 2008;27:849–855.
  • Dündar M, Özcan M, Gökçe B, et al. Comparison of two bond strength testing methodologies for bilayered all-ceramics. Dent Mater. 2007;23:630–636.
  • Yanagida H, Tanoue N, Ide T, et al. Evaluation of two dual-functional primers and a tribochemical surface modification system applied to the bonding of an indirect composite resin to metals. Odontology. 2009;97:103–108.
  • Yoo J, Yoon H, Park J, et al. Porcelain repair – influence of different systems and surface treatments on resin bond strength. J Adv Prosthodont. 2015;7:343–348.
  • Packham DE, editor. Handbook of Adhesion. England: John Wiley & Sons, Ltd; 2005.
  • Ozel GS, Inan O. Comparison of the shear bond strength of three different composite materials to metal and ceramic surfaces. Int J Comp Mater. 2016;6:121–128.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.