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Effects of radiant exposure and wavelength spectrum of light-curing units on chemical and physical properties of resin cements

  • Received : 2016.03.22
  • Accepted : 2016.07.05
  • Published : 2016.11.30

Abstract

Objectives: In this study, we evaluated the influence of different radiant exposures provided by single-peak and polywave light-curing units (LCUs) on the degree of conversion (DC) and the mechanical properties of resin cements. Materials and Methods: Six experimental groups were established for each cement (RelyX ARC, 3M ESPE; LuxaCore Dual, Ivoclar Vivadent; Variolink, DMG), according to the different radiant exposures (5, 10, and $20J/cm^2$) and two LCUs (single-peak and polywave). The specimens were made (7 mm in length ${\times}$ 2 mm in width ${\times}$ 1 mm in height) using silicone molds. After 24 hours of preparation, DC measurement was performed using Fourier transform infrared spectrometry. The same specimens were used for the evaluation of mechanical properties (flexural strength, FS; elastic modulus, E) by a three-point bending test. Data were assessed for normality, after which two-way analysis of variance (ANOVA) and post hoc Tukey's test were performed. Results: No properties of the Variolink cement were influenced by any of the considered experimental conditions. In the case of the RelyX ARC cement, DC was higher when polywave LCU was used; FS and E were not influenced by the conditions evaluated. The LuxaCore cement showed greater sensitivity to the different protocols. Conclusions: On the basis of these results, both the spectrum of light emitted and the radiant exposure used could affect the properties of resin cements. However, the influence was material-dependent.

Keywords

References

  1. Carvalho AP, Turbino ML. Analysis of the microtensile bond strength to enamel of two adhesive systems polymerized by halogen light or LED. Braz Oral Res 2005;19:307-311. https://doi.org/10.1590/S1806-83242005000400013
  2. Dunn WJ, Taloumis LJ. Polymerization of orthodontic resin cement with light emitting diode curing units. Am J Orthod Dentofacial Orthop 2002;122:236-241. https://doi.org/10.1067/mod.2002.123949
  3. Arrais CA, Pontes FM, Santos LP, Leite ER, Giannini M. Degree of conversion of adhesive systems light-cured by LED and halogen light. Braz Dent J 2007;18:54-59. https://doi.org/10.1590/S0103-64402007000100012
  4. Jimenez-Planas A, Martin J, Abalos C, Llamas R. Developments in polymerization lamps. Quintessence Int 2008;39:e74-e84.
  5. Jandt KD, Mills RW. A brief history of LED photopolymerization. Dent Mater 2013;29:605-617. https://doi.org/10.1016/j.dental.2013.02.003
  6. Santini A, Miletic V, Swift MD, Bradley M. Degree of conversion and microhardness of TPO-containing resinbased composites cured by polywave and monowave LED units. J Dent 2012;40:577-584. https://doi.org/10.1016/j.jdent.2012.03.007
  7. Dressano D, Palialol AR, Xavier TA, Braga RR, Oxman JD, Watts DC, Marchi GM, Lima AF. Effect of diphenyliodonium hexafluorophosphate on the physical and chemical properties of ethanolic solvated resins containing camphorquinone and 1-phenyl-1,2- propanedione sensitizers as initiators. Dent Mater 2016;32:756-764. https://doi.org/10.1016/j.dental.2016.03.010
  8. Meereis CT, Leal FB, Lima GS, de Carvalho RV, Piva E, Ogliari FA. BAPO as an alternative photoinitiator for the radical polymerization of dental resins. Dent Mater 2014;30:945-953. https://doi.org/10.1016/j.dental.2014.05.020
  9. Schneider LF, Cavalcante LM, Prahl SA, Pfeifer CS, Ferracane JL. Curing efficiency of dental resin composites formulated with camphorquinone or trimethylbenzoyl-diphenyl-phosphine oxide. Dent Mater 2012;28:392-397. https://doi.org/10.1016/j.dental.2011.11.014
  10. Arrais CA, Giannini M, Rueggeberg FA. Kinetic analysis of monomer conversion in auto- and dual-polymerizing modes of commercial resin luting cements. J Prosthet Dent 2009;101:128-136. https://doi.org/10.1016/S0022-3913(09)60008-1
  11. Gaglianone LA, Lima AF, Goncalves LS, Cavalcanti AN, Aguiar FH, Marchi GM. Mechanical properties and degree of conversion of etch-and-rinse and self-etch adhesive systems cured by a quartz tungsten halogen lamp and a light-emitting diode. J Mech Behav Biomed Mater 2012;12:139-143. https://doi.org/10.1016/j.jmbbm.2012.01.018
  12. Jandt KD, Mills RW, Blackwell GB, Ashworth SH. Depth of cure and compressive strength of dental composites cured with blue light emitting diodes (LEDs). Dent Mater 2000;16:41-47. https://doi.org/10.1016/S0109-5641(99)00083-4
  13. Nakamura T, Wakabayashi K, Kinuta S, Nishida H, Miyamae M, Yatani H. Mechanical properties of new self-adhesive resin-based cement. J Prosthodont Res 2010;54:59-64. https://doi.org/10.1016/j.jpor.2009.09.004
  14. Faria-e-Silva AL, Lima AF, Moraes RR, Piva E, Martins LR. Degree of conversion of etch-and-rinse and selfetch adhesives light-cured using QTH or LED. Oper Dent 2010;35:649-654. https://doi.org/10.2341/10-066-L
  15. Gaglianone LA, Lima AF, Araujo LS, Cavalcanti AN, Marchi GM. Influence of different shades and LED irradiance on the degree of conversion of composite resins. Braz Oral Res 2012;26:165-169. https://doi.org/10.1590/S1806-83242012005000002
  16. Lima AF, de Andrade KM, da Cruz Alves LE, Soares GP, Marchi GM, Aguiar FH, Peris AR, Mitsui FH. Influence of light source and extended time of curing on microhardness and degree of conversion of different regions of a nanofilled composite resin. Eur J Dent 2012;6:153-157. https://doi.org/10.1055/s-0039-1698944
  17. Lima AF, Soares GP, Vasconcellos PH, Ambrosano GM, Marchi GM, Lovadino JR, Aguiar FH. Effect of surface sealants on microleakage of Class II restorations after thermocycling and long-term water storage. J Adhes Dent 2011;13:249-254.
  18. De Goes MF, Giannini M, Foxton RM, Nikaido T, Tagami J. Microtensile bond strength between crown and root dentin and two adhesive systems. J Prosthet Dent 2007;97:223-228. https://doi.org/10.1016/j.prosdent.2007.02.014
  19. Souza-Junior EJ, Prieto LT, Soares GP, Dias CT, Aguiar FH, Paulillo LA. The effect of curing light and chemical catalyst on the degree of conversion of two dual cured resin luting cements. Lasers Med Sci 2012;27:145-151. https://doi.org/10.1007/s10103-010-0857-y
  20. Yenisey M, Dede Do, Rona N. Effect of surface treatments on the bond strength between resin cement and differently sintered zirconium-oxide ceramics. J Prosthodont Res 2016;60;36-46. https://doi.org/10.1016/j.jpor.2015.09.001
  21. Usumez A, Ozturk N, Ozturk B. Two-year color changes of light-cured composites: influence of different lightcuring units. Oper Dent 2005;30:655-660.
  22. Rueggeberg FA, Caughman WF, Chan DC. Novel approach to measure composite conversion kinetics during exposure with stepped or continuous light-curing. J Esthet Dent 1999;11:197-205. https://doi.org/10.1111/j.1708-8240.1999.tb00399.x
  23. Arrais CA, Rueggeberg FA, Waller JL, de Goes MF, Giannini M. Effect of curing mode on the polymerization characteristics of dual-cured resin cement systems. J Dent 2008;36:418-426. https://doi.org/10.1016/j.jdent.2008.02.014
  24. Moraes RR, Faria-e-Silva AL, Ogliari FA, Correr-Sobrinho L, Demarco FF, Piva E. Impact of immediate and delayed light activation on self-polymerization of dual-cured dental resin luting agents. Acta Biomater 2009;5:2095-2100. https://doi.org/10.1016/j.actbio.2009.01.030
  25. Van Landuyt KL, Snauwaert J, De Munck J, Peumans M, Yoshida Y, Poitevin A, Coutinho E, Suzuki K, Lambrechts P, Van Meerbeek B. Systematic review of the chemical composition of contemporary dental adhesives. Biomaterials 2007;28:3757-3785. https://doi.org/10.1016/j.biomaterials.2007.04.044
  26. Asmussen E, Peutzfeldt A. Influence of selected components on crosslink density in polymer structures. Eur J Oral Sci 2001;109:282-285. https://doi.org/10.1034/j.1600-0722.2001.00057.x
  27. Goncalves LS, Moraes RR, Ogliari FA, Boaro L, Braga RR, Consani S. Improved polymerization efficiency of methacrylate-based cements containing an iodonium salt. Dent Mater 2013;29:1251-1255. https://doi.org/10.1016/j.dental.2013.09.010
  28. Andrade KM, Palialol AR, Lancellotti AC, Aguiar FH, Watts DC, Goncalves LS, Lima AF, Marchi GM. Effect of diphenyliodonium hexafluorphosphate on resin cements containing different concentrations of ethyl 4-(dimethylamino)benzoate and 2-(dimethylamino) ethyl methacrylate as co-initiators. Dent Mater 2016;32:749-755. https://doi.org/10.1016/j.dental.2016.03.014
  29. Hadis MA, Tomlins PH, Shortall AC, Palin WM. Dynamic monitoring of refractive index change through photoactive resins. Dent Mater 2010;26:1106-1112. https://doi.org/10.1016/j.dental.2010.07.011
  30. Price RB, Felix CA. Effect of delivering light in specific narrow bandwidths from 394 to 515 nm on the microhardness of resin composites. Dent Mater 2009;25:899-908. https://doi.org/10.1016/j.dental.2009.01.098
  31. Mainardi Mdo C, Giorgi MC, Lima DA, Marchi GM, Ambrosano GM, Paulillo LA, Aguiar FH. Effect of energy density and delay time on the degree of conversion and Knoop microhardness of a dual resin cement. J Investig Clin Dent 2015;6:53-58. https://doi.org/10.1111/jicd.12075
  32. Reginato CF, Oliveira AS, Kaizer MR, Jardim PS, Moraes RR. Polymerization efficiency through translucent and opaque fiber posts and bonding to root dentin. J Prosthodont Res 2013;57:20-23. https://doi.org/10.1016/j.jpor.2012.05.003