国际口腔医学杂志 ›› 2017, Vol. 44 ›› Issue (2): 214-217.doi: 10.7518/gjkq.2017.02.020

• 综述 • 上一篇    下一篇

等离子体处理对口腔修复材料粘接性能的影响

李洪婷1, 刘天爽2   

  1. 1.锦州医科大学大连市口腔医院研究生培养基地 锦州 121000;
    2.大连市口腔医院特诊科 大连 116021
  • 收稿日期:2016-04-23 出版日期:2017-03-01 发布日期:2017-03-01
  • 通讯作者: 刘天爽,主任医师,硕士,Email:lts3k@163.com
  • 作者简介:李洪婷,硕士,Email:978457325@qq.com
  • 基金资助:
    大连市医学卫生科学研究计划(2014142)

Influence of plasma treatment on the bonding property of dental restorative materials

Li Hongting, Liu Tianshuang   

  1. 1. Postgraduate Training Base, Dalian Stomatological Hospital, Jinzhou Medical University, Jinzhou 121000, China;
    2. Dept. of Special Diagnosis, Dalian Stomatological Hospital, Dalian 116021, China
  • Received:2016-04-23 Online:2017-03-01 Published:2017-03-01
  • Supported by:
    This study was supported by Research Project of Medical and Health Sciences in Dalian City(2014142).

摘要: 口腔材料与材料之间、修复体与牙体组织之间良好的粘接是临床修复成功的保证。等离子体是气体在高能量作用下部分或完全电离产生的气体云,具有高效率、低能耗、安全和无二次污染等优点。等离子体可改变聚合物的表面结构并形成一个惰性的表面保护层,高材料的润湿性、生物相容性和耐用性。等离子体表面处理可提高丙烯酸树脂基托、纤维增强复合材料、玻璃陶瓷、多晶陶瓷和复合树脂等与各种基质之间的粘接力。本文就目前国内外等离子体及其在口腔材料粘接性方面的研究进展作一综述,旨在为等离子体广泛地应用于口腔临床提供理论依据。

关键词: 等离子体, 口腔材料, 粘接

Abstract: Strong adhesions between dental materials and between prostheses and tooth structures are key to successful clinical restorations. Plasma, which is produced by partial or complete ionization of gas under high energy, is a safe gas cloud with high efficiency, low energy consumption, and without secondary pollution. Plasma can change the surface structure of polymers and form an inert surface-protective layer that improves material wetting, biocompatibility, and durability. Moreover, surface treatment with plasma can increase the adhesive strength between various substrates and acrylic resin bases, fiber-reinforced complex materials, glass-ceramic materials, polycrystalline ceramics, and composite resin. This research investigates plasma bonding of dental materials to provide theoretical bases for wide plasma applications in dental clinics.

Key words: plasma, dental material, adhesion

中图分类号: 

  • R783.1
[1] Nam SH, Lee HW, Cho SH, et al. High-efficiency tooth bleaching using non-thermal atmospheric pre-ssure plasma with low concentration of hydrogen peroxide[J]. J Appl Oral Sci, 2013, 21(3):265-270.
[2] Chang JW, Kang SU, Shin YS, et al. Non-thermal atmospheric pressure plasma induces apoptosis in oral cavity squamous cell carcinoma: involvement of DNA-damage-triggering sub-G 1 arrest via the ATM/p53 pathway[J]. Arch Biochem Biophys, 2014, 545: 133-140.
[3] Kim JH, Lee MA, Han GJ, et al. Plasma in dentistry: a review of basic concepts and applications in den-tistry[J]. Acta Odontol Scand, 2014, 72(1):1-12.
[4] Zhang H, Fang J, Hu Z, et al. Effect of oxygen plasma treatment on the bonding of a soft liner to an acrylic resin denture material[J]. Dent Mater J, 2010, 29(4): 398-402.
[5] 王萍, 程祥荣, 谢光勇. 低温等离子体改性基托树脂表面粘接性能的研究[J]. 口腔医学研究, 2007, 23(2):144-146. Wang P, Cheng XR, Xie GY. Effect of low tempera-ture plasma treatment on the bonding strength of denture base[J]. J Oral Sci Res, 2007, 23(2):144-146.
[6] 张怀勤, 方江邻. 等离子体对聚甲基丙烯酸甲酯改性效果持久性的研究[J]. 口腔材料器械杂志, 2008, 17(1):5-7 Zhang HQ, Fang JL. Durability of modification on plasma-treated polymethylmethacrylate surface[J]. Chin J Dent Mater Dev, 2008, 17(1):5-7.
[7] Cökeliler D, Erkut S, Zemek J, et al. Modification of glass fibers to improve reinforcement: a plasma po-lymerization technique[J]. Dent Mater, 2007, 23(3): 335-342.
[8] Yavirach P, Chaijareenont P, Boonyawan D, et al. Effects of plasma treatment on the shear bond stren-gth between fiber-reinforced composite posts and resin composite for core build-up[J]. Dent Mater J, 2009, 28(6):686-692.
[9] 吴峻岭, 张强. 不同表面处理技术影响纤维桩与树脂核粘接强度的实验研究[J]. 口腔颌面修复学杂志, 2009, 10(5):306-308. Wu JL, Zhang Q. Study on the bond strength of fiber post and resin core using different surface processing technology[J]. Chin J Prosthod, 2009, 10(5):306- 308.
[10] Ye H, Zhang Q, Sun K, et al. Aging effects of fiber post surface treatment with nonthermal plasma[J]. Int J Prosthodont, 2012, 25(5):509-511.
[11] Costa Dantas MC, do Prado M, Costa VS, et al. Com-parison between the effect of plasma and chemical treatments on fiber post surface[J]. J Endod, 2012, 38(2):215-218.
[12] Cho BH, Han GJ, Oh KH, et al. The effect of plasma polymer coating using atmospheric-pressure glow discharge on the shear bond strength of com-posite resin to ceramic[J]. J Mater Sci, 2010, 46(8):2755- 2763.
[13] Han GJ, Chung SN, Chun BH, et al. Effect of the applied power of atmospheric pressure plasma on the adhesion of composite resin to dental ceramic[J]. J Adhes Dent, 2012, 14(5):461-469.
[14] Vargas MA, Bergeron C, Diaz-Arnold A. Cementing all-ceramic restorations: recommendations for suc-cess[J]. J Am Dent Assoc, 2011, 142(Suppl 2):20S- 24S.
[15] Derand T, Molin M, Kvam K. Bond strength of a composite luting agent to alumina ceramic surfaces [J]. Acta Odontol Scand, 2006, 64(4):227-230.
[16] Piascik JR, Wolter SD, Stoner BR. Development of a novel surface modification for improved bonding to zirconia[J]. Dent Mater, 2011, 27(5):e99-e105.
[17] Pashley DH, Tay FR, Breschi L, et al. State of the art etch-and-rinse adhesives[J]. Dent Mater, 2011, 27 (1):1-16.
[18] Ritts AC, Li H, Yu Q, et al. Dentin surface treatment using a non-thermal argon plasma brush for inter-facial bonding improvement in composite restora-tion[J]. Eur J Oral Sci, 2010, 118(5):510-516.
[19] Han GJ, Kim JH, Chung SN, et al. Effects of non-thermal atmospheric pressure pulsed plasma on the adhesion and durability of resin composite to dentin [J]. Eur J Oral Sci, 2014, 122(6):417-423.
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