Yıl: 2019 Cilt: 29 Sayı: 4 Sayfa Aralığı: 683 - 690 Metin Dili: Türkçe İndeks Tarihi: 09-12-2019

GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI

Öz:
Görünür ışıkla sertleşen kompozit rezinlerin polimerizasyonuiçin ışık cihazları kullanılmaktadır. Kompozitrezinlerin içeriğinde olduğu gibi piyasaya çıkarılan ışıkcihazlarında da çeşitlilikler olmuştur. Uygulama zamanınıazaltmak ve polimerizasyon miktarını arttırmak içinkullanılan teknolojiler ve teknikler zaman içerisindedeğişim göstermektedir. Ġlk geliştirilen ultraviyole ışıkcihazından günümüze kadar; kuartz tungsten halojenışık cihazları (QTH), light emitting diode (LED), plazmaark ışık cihazları (PAC), argon lazer ışık cihazlarıolmak üzere farklı tipte ışık kaynakları geliştirilmiştir.Bu derlemenin amacı günümüzde kullanılan ışıkcihazlarının özelliklerini, çalışma prensiplerini vepolimerizasyon etkinlikleri hakkında güncel çalışmalarışığında bilgi vermektedir.
Anahtar Kelime:

Konular: Diş Hekimliği

POLYMERIZATION LIGHT-CURING UNITS FROM PAST TO PRESENT

Öz:
Light curing units are used polmerization for lightcured composite resins. Content of composite resins as well as light curing device has been varied. Using technologies and techniques to reduce the time aplication and increase the amount of the polimeriztion has changed over time. From the first developed device ultraviolet up to the present, quartz-tungstenhalogen light-curing units (QTH), light emitting diode (LED), plasma arc light devices (PAC), argon laser light devices have been developed, including different types of light sources. The aim of this review is to present the properties of the light equipment, working principles and in the light of recent studies provide information about the activities of polymerization.
Anahtar Kelime:

Konular: Diş Hekimliği
Belge Türü: Makale Makale Türü: Derleme Erişim Türü: Erişime Açık
  • Rawls KJ, Esquivel-Upshaw, J. Restorative resins. In: Phillips’ science of dental materials. 11th Ed. Ed: Anusavıce, K.J., St. Louis: W.B. Saunders: 2003. p. 399-437.
  • Yazici AR, Muftu A, Kugel G, Perry RD. Comparison of temperature changes in the pulp chamber induced by various light curing units, in vitro. Oper Dent.2006;31:261-5.
  • Unterbrink GL, Muessner R. Influence of light intensity on two restorative systems. J Dent 1995; 23:183-9.
  • Mills RW, Jandt KD, Ashworth SH. Dental composite depth of cure with halogen and blue light emitting diode technology. Br Dent J 1999; 24:388-91.
  • Mills RW, UHL A, Jandt KD. High power light emitting diode (LED) arrays versus halogen light polymerization of oral biomaterials: Barcol hardness, compressive strenght and radiometric properties. Biomaterials, 2002;24:2097-103.
  • Craig RG, Powers JM. Restorative dental materials. 11th Ed. St. Louis: The C.V. Mosby Co., 2002.p. 231-85.
  • Rueggeberg FA, Ergle JW, Mettenburg DJ. Polymerization depths of contemporary light-curing units using microhardness. J Esthet Dent 2000; 12:340-9.
  • Asmussen E, Peutzfeldt A. Polymerization contraction of resin composite vs. energy and power density of light-cure. Eur J Oral Sci 2005;113:417-21.
  • Halvorson RH, Erickson RL, Davidson CL. Energy dependent polymerization of resin-based composite. Dent Mater 2002;18:463-9.
  • Price RB, Felix CA, Andreou P. Effects of resin composite composition and irradiation distance on the performance of curing lights. Biomaterials. 2004;25:4465-77.
  • Correr AB, Sinhoreti MAC, Sobrinho LC, Tango RB, Schneider LFJ. Consani S. Effect of the increase of energy density on knoop hardness of dental composites light-cured by conventional QTH, LED and xenon plasma arc. Braz Dent J 2005;16:218- 24.
  • Tarle, Z, Meniga A, Knezevic A, Sutalo J, Ristic M, Pichler G. Composite conversion and temperature rise using a conventional, plasma arc and experimental blue LED curing unit. J. Oral Rehabil. 2002;29:662-7.
  • Jiménez-Planas A, Martín J, Abalos C, Llamas R. Developments in polymerization lamps. Quintessence Int 2008;39:74-84.
  • Mc Cabe JF, Walls AWG. Applied dental materials. 8th Ed. Oxford, England:Blackwell Scientific Pub.2000. p.87-178.
  • Singh KT, Ataide I, Fernandes M, Lambor TR. Light Curing Devices-A Clinical Review. J Orofac Res 2011;1:15-19.
  • Price RB, Felix CA, Andreou P. Evaluation of a secondgeneration LED curing light. J Can Dent Assoc 2003;69:66-9.
  • Kauppi, MR, Combe ECC. Polymerization of orthodontic adhesives using modern high-intensity visible curing lights. Am. J. Orthod. Dentofacial Orthop. 2003;124:316-22.
  • Anne P, Adrian L, Simon F. Effect of highirradiance light-curing on micromechanical properties of resin cements. BioMed Res Int 2016; 1: 15-9.
  • Caughman WF, Rueggeberg FA. Shedding new light on composite polymerization. Oper Dent 2002;27:636-8.
  • Vandewalle KS, Roberts HW, Tiba A, Charlton DG. Thermal emission and curing efficiency of LED and halojen curing lights. Oper Dent 2005;30:257-64.
  • Hackman ST, Pohjola RM, Rueggeberg FA. Depths of cure and effect of shade using pulse-delay and continuous exposure photo-curing techniques. Oper. Dent. 2002;27:593-9.
  • Bouillaguet S, Caillot G, Forchelet J, CattaniLorente M, Wataha JC, Krejci I. Thermal risks from LED- and high-intensity QHT-curing units during polymerization of dental resins. J Biomed Mater Res B Appl Biomater 2005; 72:260-7.
  • Yoon TH, Lee YK, Lim BS, Kim CW. Degree of polymerization of resin composites by different light sources. J Oral Rehabil 2002;29:1165-73.
  • Yap AUJ, Soh MS. Thermal emission by different light-curing units. Oper Dent 2003;28:260-266.
  • Rahiotis C, Kakaboura A, Loukidis M, Vougiouklakis G. Curing efficiency of various types of light-curing units. Eur J Oral Sci 2004;112:89-94.
  • Ersoy M, Özel E, Gökçe K. Farklı uygulama yöntemlerinin kompozit rezinlerin mikrosertlikleri üzerine etkisi Atatürk Üniv DiĢ Hek Fak Derg 2007; 17: 28-31.
  • Campregher UB, Samuel SM, Fortes CB, Medina AD, Collares FM, Ogliari FA. Effectiveness of second-generation light-emitting diode (LED) light curing units. J Contemp Dent Pract.2007;8:35-42.
  • Kurachi C, Tuboy AM, Magalhaes DV, Bagnato VS. Hardness evulation of a dental composite polymerized with experimental LED-based devices. Dent Mater 2001;17:309-15.
  • Silva EH, Albuquerque RC, Lanza LD, Vieira GC, Peixoto RT, Alvim HH, Yoshida MI. Influence of different light sources on the conversion of composite resins. Indian J Dent Res 2011;22:790- 4.
  • Neumann M, Miranda WJR, Schmitt C, Rueggeberg F, Correa I. Molar extinction coefficients and the photon absorption efficiency of dental photoinitiators and light curing units. J Dent 2005; 33: 525-32.
  • Bennett AW, Watts DC. Performance of two blue light emitting diode dental curing units with distance and irradiation time. Dent Mater 2004;20: 72-9.
  • Uhl A, Mills RW, Vowles RW, Jandt KD. Knoop hardness depth profiles and compressive strength of selected dental composites polymerized with halogen and LED light curing technologies. J Biomed Mater Res 2002;63:729-38.
  • Armellin E, Bovesecchi G, Coppa P, Pasquantonio G, Cerroni L. Led curing lights and temperature changes in different tooth sites. BioMed Res Int-l 2016; 1:10-4.
  • Jandt KD, Mills RW. A brief history of LED photopolymerization. Dent Mater 2013;29:605-17.
  • Hofmann N, Hugo B, Klaiber B. Effect of irradiation type (LED or QTH) on photo-activated composite shrinkage strain kinetics, temperature rise and hardness. Eur Oral Sci 2002;110:471-9.
  • Çakmakcıoğlu Ö, TopbaĢ B. Farklı ıĢık kaynaklarının kompozit polimerizasyonuna etkisi Atatürk Üniv DiĢ Hek Fak Derg 2005;15:48-54.
  • Schneider LF, Consani S, Sinhoreti MA, Sobrinho LC, Milan FM. Temperature change and hardness with different resin composites and photoactivation methods. Oper Dent 2005;30:516-21.
  • 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;28:392-7.
  • Lima AF, Formaggio SEF, Zambelli LFA, Palialol ARM, Marchi GM, Saraceni CHC, Oliveira MT. Effects of radiant exposure and wavelength spectrum of light-curing units on chemical and physical properties of resin cements. Restor Dent Endod 2016;41:271-7.
  • Hee-Min L, Sang-Cheol K, Kyung-Hwa K, NaYoung C. Comparison of the bonding strengths of second- and third-generation light-emitting diode light-curing units. Korean J Orthod 2016;46:364– 71.
  • Price RBT, Fahey J, Felix CM. Knoop microhardness mapping used to compare the efficacy of led, qth and pac curing lights. Oper Dent 2010;35:58-68.
  • Spranley TJ, Winkler M, Dagate J, Oncale D, Strother E. Curing light burns. Gen Dent 2012;60:210-4.
  • Labrie D, Moe J, Price RBT, Young ME, Felix CM. Evaluation of ocular hazards from 4 types of curing lights. J Can Dent Assoc 2011;77:116-8.
  • Roule JF, Wilson NHF, Fuzzi M. Advance in operative dentistry. Challenges of the future. Chicago: Quintessence Publishing Co. Inc.2001. p. 169-72.
  • Oesterle LJ, Newman SM, Shellhart WC. Rapid curing of bonding composite with a xenon plasma arc light. Am J Orthod Dentofacial Orthop 2001;119:610-6.
  • Rueggeberg FA, Blalock JS, Callan RS. LED curing lights – what is new? Compend Contin Educ Dent 2005;26:586-91.
  • BektaĢ ÖÖ, Siso Hġ, Eren D. IĢık kaynakları, polimerizasyon ve klinik uygulamalar. EÜ DiĢhek Fak Derg 2006;27:117-24.
  • Hilton TJ. Direct posterior esthetic restorations. In: Fundamentals of operative dentistry: a contemporary approach. 2nd Ed Ed: Summit JB, Robbins JW, Schwartz RS. Chicago: Quintessence Publishing Co. Inc.2001.p.292-305.
  • Hicks MJ, Westerman GH, Flaitz CM, Powell GL. Surface topography and enamel-resin interface ol pit and fissure sealants following visible light and argon laser polymerization: an in vitro study. ASDC J Dent Child 2000;67:169-75.
  • Mark GF, Wayne AM. Photopolymerization of composite resin using the argon laser. J Can Dent Assoc 1999;65:447-50.
  • Sun G. The rol of lasers in cosmetic dentistry. Dent Clin North Am 2000; 44:831-50.
  • Karaarslan EĢ, Yıldırım C, ÜĢümez A. Restoratif tedavide lazer uygulamaları Atatürk Üniv DiĢ Hek Fak Derg 2010;22:340-9.
APA TÜRKOĞLU Ö, Bulut A (2019). GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. , 683 - 690.
Chicago TÜRKOĞLU Özge,Bulut Ali Can GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. (2019): 683 - 690.
MLA TÜRKOĞLU Özge,Bulut Ali Can GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. , 2019, ss.683 - 690.
AMA TÜRKOĞLU Ö,Bulut A GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. . 2019; 683 - 690.
Vancouver TÜRKOĞLU Ö,Bulut A GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. . 2019; 683 - 690.
IEEE TÜRKOĞLU Ö,Bulut A "GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI." , ss.683 - 690, 2019.
ISNAD TÜRKOĞLU, Özge - Bulut, Ali Can. "GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI". (2019), 683-690.
APA TÜRKOĞLU Ö, Bulut A (2019). GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi, 29(4), 683 - 690.
Chicago TÜRKOĞLU Özge,Bulut Ali Can GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi 29, no.4 (2019): 683 - 690.
MLA TÜRKOĞLU Özge,Bulut Ali Can GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi, vol.29, no.4, 2019, ss.683 - 690.
AMA TÜRKOĞLU Ö,Bulut A GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi. 2019; 29(4): 683 - 690.
Vancouver TÜRKOĞLU Ö,Bulut A GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi. 2019; 29(4): 683 - 690.
IEEE TÜRKOĞLU Ö,Bulut A "GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI." Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi, 29, ss.683 - 690, 2019.
ISNAD TÜRKOĞLU, Özge - Bulut, Ali Can. "GEÇMİŞTEN GÜNÜMÜZE POLİMERİZASYON CİHAZLARI". Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi 29/4 (2019), 683-690.