New Radiopaque Bromine-Containing Monomers for Dental Restorative Materials

被引:1
|
作者
Tauscher, Sven [1 ]
Catel, Yohann [1 ]
Liska, Robert [2 ]
Moszner, Norbert [1 ]
机构
[1] Ivoclar Vivadent AG, Bendererstr 2, FL-9494 Schaan, Liechtenstein
[2] Vienna Univ Technol, Inst Appl Synthet Chem, Getreidemarkt 9-163 MC, A-1060 Vienna, Austria
关键词
dental polymers; halogenated; photopolymerization; X-ray; ACRYLIC BONE CEMENTS; RESIN COMPOSITES; POLYMERIZATION; PHOTOPOLYMERIZATION; PHOTOINITIATORS; REACTIVITY; ADHESIVES;
D O I
10.1002/mame.201600012
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Four bromine-containing methacrylates 1-4 are synthesized from pentaerythritol tribromide and 2,2,2-tribromoethanol and are characterized by H-1 and C-13 NMR spectroscopy. Their free radical polymerization is performed in dimethylformamide (DMF), using 2,2'-azobis(2-methylpropionitrile) as initiator. The photopolymerization behavior of monomers 1-4 is investigated using a differential scanning calorimeter. Homopolymerizations and copolymerizations with 2-hydroxyethyl methacrylate are carried out. Both the presence of a carbamate group and of bromine atoms result in an increase of the polymerization rate. Dental resins are prepared by replacing a certain amount of 2-(4-cumyl-phenoxy) ethyl methacrylate by monomers 3 and 4 in a model formulation. The incorporation of these methacrylates leads to a significant increase of the radiopacity. Resins based on mono mer 4 exhibit improved mechanical properties.
引用
收藏
页码:733 / 742
页数:10
相关论文
共 50 条
  • [31] Nanomechanical properties and wear resistance of dental restorative materials
    Karimzadeh, A.
    Ayatollahi, Majid R.
    Nikkhooyifar, M.
    Bushroa, A. R.
    STRUCTURAL ENGINEERING AND MECHANICS, 2017, 64 (06) : 819 - 826
  • [32] Current Insights into the Modulation of Oral Bacterial Degradation of Dental Polymeric Restorative Materials
    Zhang, Ning
    Ma, Yansong
    Weir, Michael D.
    Xu, Hockin H. K.
    Bai, Yuxing
    Melo, Mary Anne S.
    MATERIALS, 2017, 10 (05):
  • [33] Elution of residual monomers from dental composite materials
    Tuna, E. B.
    Aktoren, O.
    Oshida, Y.
    Gencay, K.
    EUROPEAN JOURNAL OF PAEDIATRIC DENTISTRY, 2010, 11 (03) : 110 - 114
  • [34] Effects of bioflavonoid-containing mouth rinses on optical properties of tooth-coloured dental restorative materials
    Divnic-Resnik, Tihana
    Shen, Jay Junyang
    Jim Vinh The Nguyen
    Lu, Derek Weidi
    Miletic, Vesna
    SCIENTIFIC REPORTS, 2022, 12 (01):
  • [35] Nanotechnology-based restorative materials for dental caries management
    Melo, Mary A. S.
    Guedes, Sarah F. F.
    Xu, Hockin H. K.
    Rodrigues, Lidiany K. A.
    TRENDS IN BIOTECHNOLOGY, 2013, 31 (08) : 459 - 467
  • [36] The effect of curing with plasma light on the shrinkage of dental restorative materials
    Deb, S
    Mallett, R
    Millar, B
    JOURNAL OF ORAL REHABILITATION, 2003, 30 (07) : 723 - 728
  • [37] In vitro biological response to core and flowable dental restorative materials
    Wataha, JC
    Lockwood, PE
    Bouillaguet, S
    Noda, M
    DENTAL MATERIALS, 2003, 19 (01) : 25 - 31
  • [38] Aging Effects of Dental Restorative Materials upon Surface Hardness
    Lizymol, P. P.
    Krishnan, Kalliyana V.
    JOURNAL OF POLYMER MATERIALS, 2009, 26 (02): : 207 - 214
  • [39] Covalent adaptable networks as dental restorative resins: Stress relaxation by additionfragmentation chain transfer in allyl sulfide-containing resins
    Park, Hee Young
    Kloxin, Christopher J.
    Scott, Timothy F.
    Bowman, Christopher N.
    DENTAL MATERIALS, 2010, 26 (10) : 1010 - 1016
  • [40] Synthesis of dimethacrylates monomers with low polymerization shrinkage and its application in dental composites materials
    He, Jingwei
    Liu, Fang
    Vallittu, Pekka K.
    Lassila, Lippo V. J.
    JOURNAL OF POLYMER RESEARCH, 2012, 19 (08)