Journal of Dentistry
Volume 38, Issue 10 , Pages 820-827 , October 2010

Comparison of the effect of storage media on shear punch strength of resin luting cements

  • Rafat Bagheri

      Affiliations

    • School of Dental Science, Shiraz University of Medical Science, Shiraz, Iran
    • Melbourne Dental School, The University of Melbourne, Melbourne, Australia
    • Corresponding Author InformationCorresponding author at: School of Dental Science, the University of Melbourne, 5th Floor, 720 Swanston st, Vic 3010, Australia. Tel.: +61 3 93411480; fax: +61 3 93411595.
  • ,
  • Ayşe Mese

      Affiliations

    • Department of Prosthodontics, Dental Faculty, University of Dicle, Diyarbakır, Turkey
  • ,
  • Michael F. Burrow

      Affiliations

    • Melbourne Dental School, The University of Melbourne, Melbourne, Australia
  • ,
  • Martin J. Tyas

      Affiliations

    • Melbourne Dental School, The University of Melbourne, Melbourne, Australia

Received 21 March 2010 ,Revised 24 June 2010 ,Accepted 24 June 2010.

References 

  1. Diaz-Arnold AM, Vargas MA, Haselton DR. Current status of luting agents for fixed prosthodontics. Journal of Prosthetic Dentistry. 1999;81:135–141
  2. Kovarik RE, Muncy MV. Fracture toughness of resin-modified glass ionomers. American Journal of Dentistry. 1995;8:145–148
  3. Mitra SB, Kedrowski BL. Long-term mechanical properties of glass ionomers. Dental Materials. 1994;10:78–82
  4. El-Mowafy OM, Fenton AH, Forrester N, Milenkovic M. Retention of metal ceramic crowns cemented with resin cements: effects of preparation taper and height. Journal of Prosthetic Dentistry. 1996;76:524–529
  5. El-Mowafy OM, Milenkovic M. Retention of paraposts cemented with dentin-bonded resin cements. Operative Dentistry. 1994;19:176–182
  6. White SN, Yu Z. Physical properties of fixed prosthodontic, resin composite luting agents. International Journal of Prosthodontics. 1993;6:384–389
  7. Groten M, Probster L. The influence of different cementation modes on the fracture resistance of feldspathic ceramic crowns. International Journal of Prosthodontics. 1997;10:169–177
  8. Miguel A, de la Macorra JC, Nevado S, Gomez J. Porosity of resin cements and resin-modified glass-ionomers. American Journal of Dentistry. 2001;14:17–21
  9. Inokoshi S, Willems G, Van Meerbeek B, Lambrechts P, Braem M, Vanherle G. Dual-cure luting composites: Part I. Filler particle distribution. Journal of Oral Rehabilitation. 1993;20:133–146
  10. Jacobsen PH, Rees JS. Luting agents for ceramic and polymeric inlays and onlays. International Dental Journal. 1992;42:145–149
  11. Rosenstiel SF, Land MF, Crispin BJ. Dental luting agents: a review of the current literature. Journal of Prosthetic Dentistry. 1998;80:280–301
  12. Rueggeberg FA, Caughman WF. The influence of light exposure on polymerization of dual-cure resin cements. Operative Dentistry. 1993;18:48–55
  13. Suzuki S, Minami H. Evaluation of toothbrush and generalized wear of luting materials. American Journal of Dentistry. 2005;18:311–317
  14. Kumbuloglu O, Lassila LV, User A, Vallittu PK. A study of the physical and chemical properties of four resin composite luting cements. International Journal of Prosthodontics. 2004;17:357–363
  15. Kamposiora P, Papavasilious G, Bayne SC, Felton DA. Finite element analysis estimates of cement microfracture under complete veneer crowns. Journal of Prosthetic Dentistry. 1994;71:435–441
  16. Soderholm KJ. Degradation of glass filler in experimental composites. Journal of Dental Research. 1981;60:1867–1875
  17. Yap A, Lee M, Chung S, Tsai K, Lim C. Effect of food-simulating liquids on the shear punch strength of composite and polyacid-modified composite restoratives. Operative Dentistry. 2003;28:529–534
  18. Ellakuria J, Triana R, Minguez N, Soler I, Ibaseta G, Maza J, et al. Effect of one-year water storage on the surface microhardness of resin-modified versus conventional glass-ionomer cements. Dental Materials. 2003;19:286–290
  19. Kao EC. Influence of food-simulating solvents on resin composites and glass-ionomer restorative cement. Dental Materials. 1989;5:201–208
  20. Piwowarczyk A, Lauer HC. Mechanical properties of luting cements after water storage. Operative Dentistry. 2003;28:535–542
  21. Cattani-Lorente MA, Dupuis V, Payan J, Moya F, Meyer JM. Effect of water on the physical properties of resin-modified glass ionomer cements. Dental Materials. 1999;15:71–78
  22. Kanchanavasita W, Anstice HM, Pearson GJ. Water sorption characteristics of resin-modified glass-ionomer cements. Biomaterials. 1997;18:343–349
  23. Kanchanavasita W, Anstice HM, Pearson GJ. Long-term flexural strengths of resin-modified glass-ionomer cements. Biomaterials. 1998;19:1703–1713
  24. Yap AU, Cheang PH, Chay PL. Mechanical properties of two restorative reinforced glass-ionomer cements. Journal of Oral Rehabilitation. 2002;29:682–688
  25. Nicholson JW, McKenzie MA, Goodridge R, Wilson AD. Variations in the compressive strength of dental cements stored in ionic or acidic solutions. Journal of Material Science: Materials in Medicine. 2001;12:647–652
  26. Roydhouse RH. Punch-shear test for dental purposes. Journal of Dental Research. 1970;49:131–136
  27. Ikejima I, Nomoto R, McCabe JF. Shear punch strength and flexural strength of model composites with varying filler volume fraction, particle size and silanation. Dental Materials. 2003;19:206–211
  28. Nomoto R, Carrick TE, McCabe JF. Suitability of a shear punch test for dental restorative materials. Dental Materials. 2001;17:415–421
  29. Attar N, Tam LE, McComb D. Mechanical and physical properties of contemporary dental luting agents. Journal of Prosthetic Dentistry. 2003;89:127–134
  30. Cheylan JM, Gonthier S, Degrange M. In vitro push-out strength of seven luting agents to dentin. International Journal of Prosthodonicst. 2002;15:365–370
  31. Kanakuri K, Kawamoto Y, Kakehashi Y, Matsumura H. Influence of temporary cements on bond strength between resin-based luting agents and dentin. American Journal of Dentistry. 2006;19:101–105
  32. Ozcan M, Alkumru HN, Gemalmaz D. The effect of surface treatment on the shear bond strength of luting cement to a glass-infiltrated alumina ceramic. International Journal of Prosthodontics. 2001;14:335–339
  33. Walter R, Miguez PA, Pereira PN. Microtensile bond strength of luting materials to coronal and root dentin. Journal of Estheict Restoativer Dentistry. 2005;17:165–171
  34. Bagheri R, Tyas MJ, Burrow MF. Comparison of the effect of storage media on hardness and shear punch strength of tooth-colored restorative materials. American Journal of Dentistry. 2007;20:329–334
  35. Nakamura T, Wakabayashi K, Kinuta S, Nishida H, Miyamae M, Yatani H. Mechanical properties of new self-adhesive resin-based cement. Journal of Prosthodontic Research. 2009;
  36. Fano L, Fano V, Ma W, Wang X, Zhu F. Hydrolytic degradation and cracks in resin-modified glass-ionomer cements. Journal of Biomedical Material Research. 2004;69:87–93
  37. Mese A, Burrow MF, Tyas MJ. Sorption and solubility of luting cements in different solutions. Dental Material Journal. 2008;27:702–709
  38. Ortengren U, Andersson F, Elgh U, Terselius B, Karlsson S. Influence of pH and storage time on the sorption and solubility behaviour of three composite resin materials. Journal of Dentistry. 2001;29:35–41
  39. Geddes DA. Acids produced by human dental plaque metabolism in situ. Caries Research. 1975;9:98–109
  40. Asmussen E. Softening of bis-GMA-based polymers by ethanol and by organic acids of plaque. Scandinavian Journal of Dental Research. 1984;92:257–261
  41. Ferracane JL, Berge HX, Condon JR. In vitro aging of dental composites in water—effect of degree of conversion, filler volume, and filler/matrix coupling. Journal of Biomedical Material Research. 1998;42:465–472
  42. Bagheri R, Tyas MJ, Burrow MF. Subsurface degradation of resin-based composites. Dental Materials. 2007;23:944–951
  43. Turssi CP, Hara AT, Serra MC, Rodrigues AL. Effect of storage media upon the surface micromorphology of resin-based restorative materials. Journal of Oral Rehabilitation. 2002;29:864–871
  44. Ortengren U, Wellendorf H, Karlsson S, Ruyter IE. Water sorption and solubility of dental composites and identification of monomers released in an aqueous environment. Journal of Oral Rehabilitation. 2000;28:1106–1115
  45. Braden M. Water absorption characteristics of dental microfine composite filling materials. II. Experimental materials. Biomaterials. 1984;5:373–375
  46. Kalachandra S, Turner DT. Water sorption of polymethacrylate networks: bis-GMA/TEGDM copolymers. Journal of Biomedical Materials Research. 1987;21:329–338
  47. Yap AU, Tan SH, Wee SS, Lee CW, Lim EL, Zeng KY. Chemical degradation of composite restoratives. Journal of Oral Rehabilitation. 2001;28:1015–1021
  48. Gopferich A. Mechanisms of polymer degradation and erosion. Biomaterials. 1996;17:103–114
  49. Deepa CS, Krishnan VK. Effect of resin matrix ratio, storage medium, and time upon the physical properties of a radiopaque dental composite. Journal of Biomaterials Applications. 2000;14:296–315

PII: S0300-5712(10)00165-X

doi: 10.1016/j.jdent.2010.06.014

Journal of Dentistry
Volume 38, Issue 10 , Pages 820-827 , October 2010