請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/41742完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 王大銘(Da-Ming Wang) | |
| dc.contributor.author | Yi-Chen Kuo | en |
| dc.contributor.author | 郭怡辰 | zh_TW |
| dc.date.accessioned | 2021-06-15T00:29:38Z | - |
| dc.date.available | 2016-09-19 | |
| dc.date.copyright | 2011-09-19 | |
| dc.date.issued | 2011 | |
| dc.date.submitted | 2011-08-15 | |
| dc.identifier.citation | 1. 張閨臣 賴. 中西醫會診 齲齒. 初版 ed. 書泉, 臺北市, 1999.
2. 大田絹代等作. 齒、口腔疾病護理. 初版 ed. 五南圖書, 台北市, 2000. 3. Hicks J, Garcia-Godoy F, Flaitz C. Biological factors in dental caries: role of saliva and dental plaque in the dynamic process of demineralization and remineralization (part 1). J Clin Pediatr Dent. 2003; 28: 47-52. 4. Featherstone JD. Prevention and reversal of dental caries: role of low level fluoride. Community Dent Oral Epidemiol. 1999; 27: 31-40. 5. Featherstone JD. The science and practice of caries prevention. J Am Dent Assoc. 2000; 131: 887-899. 6. Mjör IA, Fejerskov O. Histology of the human tooth Munksgaard, Copenhagen, 1979. 7. Marshall GW, Jr., Marshall SJ, Kinney JH, Balooch M. The dentin substrate: structure and properties related to bonding. J Dent. 1997; 25: 441-458. 8. Ten Cate AR. Oral histology : development, structure, and function Mosby, St. Louis, 1994. 9. Fosse G, Saele PK, Eide R. Numerical Density and Distributional Pattern of Dentin Tubules. Acta Odontologica Scandinavica. 1992; 50: 201-210. 10. Garberoglio R, Brannstrom M. Scanning Electron-Microscopic Investigation of Human Dentinal Tubules. Archives of Oral Biology. 1976; 21: 355-362. 11. Olsson S, Oilo G, Adamczak E. The structure of dentin surfaces exposed for bond strength measurements. Scand J Dent Res. 1993; 101: 180-184. 12. Henderson D. Greene Vardiman BLACK (1836-1915), the grand old man of dentistry. Med Hist. 1961; 5: 132-143. 13. Joseph R. The Father of Modern Dentistry - Dr. Greene Vardiman Black(1836-1915). Journal of Conservative Dentistry. 2005; 8: 5-6. 14. O'Brien WJ. Dental materials and their selection Quintessence Pub. Co., Hanover Park, IL, 2008. 15. Vimy MJ, Lorscheider FL. Serial measurements of intra-oral air mercury: estimation of daily dose from dental amalgam. Journal of Dental Research. 1985; 64: 1072-1075. 16. Vimy MJ, Lorscheider FL. Intra-oral air mercury released from dental amalgam. Journal of Dental Research. 1985; 64: 1069-1071. 17. Abraham JE, Svare CW, Frank CW. The effect of dental amalgam restorations on blood mercury levels. Journal of Dental Research. 1984; 63: 71-73. 18. Bates MN, Fawcett J, Garrett N, Cutress T, Kjellstrom T. Health effects of dental amalgam exposure: a retrospective cohort study. Int J Epidemiol. 2004; 33: 894-902. 19. Hanson M, Pleva J. The Dental Amalgam Issue - a Review. Experientia. 1991; 47: 9-21. 20. Statement on Dental Amalgam. ADA Council on Scientific Affairs. 2009. 21. Summary of Changes to the Classification of Dental Amalgam and Mercury. US Food and Drug Administration. 2009; Appendix I. 22. 張晏祥. 銀粉的過去、現在及未來。 中華民國牙體復形學會. 2009. 23. Akahane ST, JP), Nakaseko, Hisashi (Tokyo, JP). Dental cement composition. GC Corporation (Tokyo, JP), United States, 2001. 24. Buonocore MG. A simple method of increasing the adhesion of acrylic filling materials to enamel surfaces. Journal of Dental Research. 1955; 34: 849-853. 25. Buonocore MG, Matsui A, Gwinnett AJ. Penetration of Resin Dental Materials into Enamel Surfaces with Reference to Bonding. Archives of Oral Biology. 1968; 13: 61-&. 26. Gwinnett AJ. Histologic Changes in Human Enamel Following Treatment with Acidic Adhesive Conditioning Agents. Archives of Oral Biology. 1971; 16: 731-&. 27. Gwinnett AJ, Matsui A. A Study of Enamel Adhesives - Physical Relationship between Enamel and Adhesive. Archives of Oral Biology. 1967; 12: 1615-&. 28. Retief DH. Effect of Conditioning Enamel Surface with Phosphoric-Acid. Journal of Dental Research. 1973; 52: 333-341. 29. Silverstone LM. Fissure sealants. Laboratory studies. Caries Res. 1974; 8: 2-26. 30. Davidson CL, Degee AJ. Relaxation of Polymerization Contraction Stresses by Flow in Dental Composites. Journal of Dental Research. 1984; 63: 146-148. 31. Davidson CL, Degee AJ, Feilzer A. The Competition between the Composite-Dentin Bond Strength and the Polymerization Contraction Stress. Journal of Dental Research. 1984; 63: 1396-1399. 32. Pashley DH, Michelich V, Kehl T. Dentin permeability: effects of smear layer removal. J Prosthet Dent. 1981; 46: 531-537. 33. Brannstrom M. Smear layer: pathological and treatment considerations. Oper Dent Suppl. 1984; 3: 35-42. 34. Tagami J, Tao L, Pashley DH. Correlation among Dentin Depth, Permeability, and Bond Strength of Adhesive Resins. Dental Materials. 1990; 6: 45-50. 35. Gwinnett AJ. Dentin bond strength after air drying and rewetting. Am J Dent. 1994; 7: 144-148. 36. Davidson CL. Resisting the curing contraction with adhesive composites. J Prosthet Dent. 1986; 55: 446-447. 37. Dumsha T, Biron G. Inhibition of marginal leakage with a dentin bonding agent. Journal of Dental Research. 1984; 63: 1255-1257. 38. Asmussen E, Uno S. Adhesion of Restorative Resins to Dentin - Chemical and Physicochemical Aspects. Operative Dentistry. 1992: 68-74. 39. Bowen RL, Marjenhoff WA. Development of an Adhesive Bonding System. Operative Dentistry. 1992: 75-80. 40. Ruyter IE. The Chemistry of Adhesive Agents. Operative Dentistry. 1992: 32-43. 41. Eick JD. Smear layer--materials surface. Proc Finn Dent Soc. 1992; 88 Suppl 1: 225-242. 42. Erickson RL. Surface interactions of dentin adhesive materials. Operative Dentistry. 1992; Suppl 5: 81-94. 43. Nakabayashi N, Kojima K, Masuhara E. The Promotion of Adhesion by the Infiltration of Monomers into Tooth Substrates. Journal of Biomedical Materials Research. 1982; 16: 265-273. 44. Bowen RL. Adhesive bonding of various materials to hard tooth tissues. IV. Bonding to dentin, enamel, and fluorapatite improved by the use of a surface-active comonomer. Journal of Dental Research. 1965; 44: 906-911. 45. Bowen RL. Adhesive bonding of various materials to hard tooth tissues. III. Bonding to dentin improved by pre-treatment and the use of surface-active comonomer. Journal of Dental Research. 1965; 44: 903-905. 46. Bowen RL. Adhesive bonding of various materials to hard tooth tissues. II. Bonding to dentin promoted by a surface-active comonomer. Journal of Dental Research. 1965; 44: 895-902. 47. Bowen RL. Adhesive Bonding of Various Materials to Hard Tooth Tissues. I. Method of Determining Bond Strength. Journal of Dental Research. 1965; 44: 690-695. 48. Brudevold F, Buonocore M, Wileman W. A report on a resin composition capable of bonding to human dentin surfaces. Journal of Dental Research. 1956; 35: 846-851. 49. Kugel G, Ferrari M. The science of bonding: from first to sixth generation. J Am Dent Assoc. 2000; 131 Suppl: 20S-25S. 50. Hansen EK. Effect of Scotchbond Dependent on Cavity Cleaning, Cavity Diameter and Cavosurface Angle. Scandinavian Journal of Dental Research. 1984; 92: 141-147. 51. Fusayama T, Nakamura M, Kurosaki N, Iwaku M. Non-Pressure Adhesion of a New Adhesive Restorative Resin. Journal of Dental Research. 1979; 58: 1364-1370. 52. Lee HL, Orlowski JA, Scheidt GC, Lee JR. Effects of Acid Etchants on Dentin. Journal of Dental Research. 1973; 52: 1228-1233. 53. Munksgaard EC, Asmussen E. Bond Strength between Dentin and Restorative Resins Mediated by Mixtures of Hema and Glutaraldehyde. Journal of Dental Research. 1984; 63: 1087-1089. 54. Kanca J, 3rd. A method for bonding to tooth structure using phosphoric acid as a dentin-enamel conditioner. Quintessence Int. 1991; 22: 285-290. 55. Kanca J, 3rd. Wet bonding: effect of drying time and distance. Am J Dent. 1996; 9: 273-276. 56. Tay FR, Gwinnett AJ, Wei SH. The overwet phenomenon: an optical, micromorphological study of surface moisture in the acid-conditioned, resin-dentin interface. Am J Dent. 1996; 9: 43-48. 57. Tay FR, Gwinnett AJ, Pang KM, Wei SHY. Structural Evidence of a Sealed Tissue Interface with a Total-Etch Wet-Bonding Technique in-Vivo. Journal of Dental Research. 1994; 73: 629-636. 58. van Dijken JWV. Clinical evaluation of three adhesive systems in class V non-carious lesions. Dental Materials. 2000; 16: 285-291. 59. Yoshiyama M, Matsuo T, Ebisu S, Pashley D. Regional bond strengths of self-etching/self-priming adhesive systems. J Dent. 1998; 26: 609-616. 60. Summitt JB. Fundamentals of operative dentistry : a contemporary approach Quintessence Pub., Chicago, 2006. 61. Soderholm KJ. Dental adhesives .... how it all started and later evolved. J Adhes Dent. 2007; 9 Suppl 2: 227-230. 62. Hadavi F, Hey JH, Ambrose ER, elBadrawy HE. Repair of high-copper amalgam with and without an adhesive system: in vitro assessment of microleakage and shear bond strength. Gen Dent. 1993; 41: 49-53. 63. Lacy AM, Rupprecht R, Watanabe L. Use of self-curing composite resins to facilitate amalgam repair. Quintessence Int. 1992; 23: 53-59. 64. Bowen RL. Dental filling material comprising vinyl silane treated fused silica and a binder consisting of the reaction product of bis phenol and glycidyl acrylate. Bowen, Rafael L., United States, 1962. 65. Omura IK, JP), Yamauchi, Junichi (Kurashiki, JP), Nagase, Yoshinori (Kurashiki, JP), Shibatani, Kyoichiro (Kurashiki, JP). Dental material. Kuraray Co., Ltd. (Kurashiki, JP), United States, 1981. 66. Park KSS, KR), Park, Sang Soon (Seoul, KR), Baek, Kyu Hyun (Goyang-si, KR), Kim, Min Sung (Seoul, KR), Han, Dong Keun (Seoul, KR). Dental self-curing resin cement compositions. Dentkist, Inc. (Seoul, KR), United States, 2006. 67. Bunker JEWBL, MN). Dentin and enamel adhesive. Minnesota Mining and Manufacturing Company (St. Paul, MN), United States, 1987. 68. Suh BOB, IL), Hamer, Martin (Skokie, IL). Dentin bonding system. Bisco, Inc. (Downers Grove, IL), United States, 1994. 69. Jacobsen T, Soderholm KJ. Some Effects of Water on Dentin Bonding. Dental Materials. 1995; 11: 132-136. 70. Spencer P, Wang Y. Adhesive phase separation at the dentin interface under wet bonding conditions. Journal of Biomedical Materials Research. 2002; 62: 447-456. 71. Nakabayashi N, Takarada K. Effect of Hema on Bonding to Dentin. Dental Materials. 1992; 8: 125-130. 72. Nakaoki Y, Nikaido T, Pereira PNR, Inokoshi S, Tagami J. Dimensional changes of demineralized dentin treated with HEMA primers. Dental Materials. 2000; 16: 441-446. 73. Van Landuyt KL, De Munck J, Snauwaert J, Coutinho E, Poitevin A, Yoshida Y, Inoue S, Peumans M, Suzuki K, Lambrechts P, Van Meerbeek B. Monomer-solvent phase separation in one-step self-etch adhesives. Journal of Dental Research. 2005; 84: 183-188. 74. Hasegawa T, Manabe A, Itoh K, Wakumoto S. Investigation of Self-Etching Dentin Primers. Dental Materials. 1989; 5: 408-410. 75. Eick JD, Robinson SJ, Chappell RP, Cobb CM, Spencer P. The dentinal surface: its influence on dentinal adhesion. Part III. Quintessence Int. 1993; 24: 571-582. 76. Andreasson H, Boman A, Johnsson S, Karlsson S, Barregard L. On permeability of methyl methacrylate, 2-hydroxyethyl methacrylate and triethyleneglycol dimethacrylate through protective gloves in dentistry. Eur J Oral Sci. 2003; 111: 529-535. 77. Paranjpe A, Bordador LCF, Wang MY, Hume WR, Jewett A. Resin monomer 2-hydroxyethyl methacrylate (HEMA) is a potent inducer of apoptotic cell death in human and mouse cells. Journal of Dental Research. 2005; 84: 172-177. 78. Guo X, Wang Y, Spencer P, Ye Q, Yao X. Effects of water content and initiator composition on photopolymerization of a model BisGMA/HEMA resin. Dental Materials. 2008; 24: 824-831. 79. Ferracane JL. Hygroscopic and hydrolytic effects in dental polymer networks. Dental Materials. 2006; 22: 211-222. 80. Ito S, Hashimoto M, Wadgaonkar B, Svizero N, Carvalho RM, Yiu C, Rueggeberg FA, Foulger S, Saito T, Nishitani Y, Yoshiyama M, Tay FR, Pashley DH. Effects of resin hydrophilicity on water sorption and changes in modulus of elasticity. Biomaterials. 2005; 26: 6449-6459. 81. Paul SJ, Leach M, Rueggeberg FA, Pashley DH. Effect of water content on the physical properties of model dentine primer and bonding resins. Journal of Dentistry. 1999; 27: 209-214. 82. Peutzfeldt A, Asmussen E. The effect of postcuring on quantity of remaining double bonds, mechanical properties, and in vitro wear of two resin composites. Journal of Dentistry. 2000; 28: 447-452. 83. Dickens SH, Cho BH. Interpretation of bond failure through conversion and residual solvent measurements and Weibull analyses of flexural and microtensile bond strengths of bonding agents. Dental Materials. 2005; 21: 354-364. 84. Ye Q, Spencer P, Wang Y, Misra A. Relationship of solvent to the photopolymerization process, properties, and structure in model dentin adhesives. Journal of Biomedical Materials Research Part A. 2007; 80A: 342-350. 85. Furukawa M, Shigetani Y, Finger WJ, Hoffmann M, Kanehira M, Endo T, Komatsu M. All-in-one self-etch model adhesives: HEMA-free and without phase separation. Journal of Dentistry. 2008; 36: 402-408. 86. Van Landuyt KL, Snauwaert J, Peumans M, De Munck J, Lambrechts P, Van Meerbeek B. The role of HEMA in one-step self-etch adhesives. Dental Materials. 2008; 24: 1412-1419. 87. De Munck J, Van Landuyt K, Peumans M, Poitevin A, Lambrechts P, Braem M, Van Meerbeek B. A critical review of the durability of adhesion to tooth tissue: Methods and results. Journal of Dental Research. 2005; 84: 118-132. 88. Versluis A, Tantbirojn D, Douglas WH. Why do shear bond tests pull out dentin? Journal of Dental Research. 1997; 76: 1298-1307. 89. Sano H, Shono T, Sonoda H, Takatsu T, Ciucchi B, Carvalho R, Pashley DH. Relationship between surface area for adhesion and tensile bond strength--evaluation of a micro-tensile bond test. Dental Materials. 1994; 10: 236-240. 90. Pashley DH, Carvalho RM, Sano H, Nakajima M, Yoshiyama M, Shono Y, Fernandes CA, Tay F. The microtensile bond test: a review. J Adhes Dent. 1999; 1: 299-309. 91. Shono Y, Ogawa T, Terashita M, Carvalho RM, Pashley EL, Pashley DH. Regional measurement of resin-dentin bonding as an array. Journal of Dental Research. 1999; 78: 699-705. 92. Bouillaguet S, Troesch S, Wataha JC, Krejci I, Meyer JM, Pashley DH. Microtensile bond strength between adhesive cements and root canal dentin. Dental Materials. 2003; 19: 199-205. 93. Gaston BA, West LA, Liewehr FR, Fernandes C, Pashley DH. Evaluation of regional bond strength of resin cement to endodontic surfaces. Journal of Endodontics. 2001; 27: 321-324. 94. Goracci C, Tavares AU, Fabianelli A, Monticelli F, Raffaelli O, Cardoso PC, Tay F, Ferrari M. The adhesion between fiber posts and root canal walls: comparison between microtensile and push-out bond strength measurements. Eur J Oral Sci. 2004; 112: 353-361. 95. De Santis R, Prisco D, Apicella A, Ambrosio L, Rengo S, Nicolais L. Carbon fiber post adhesion to resin luting cement in the restoration of endodontically treated teeth. Journal of Materials Science-Materials in Medicine. 2000; 11: 201-206. 96. Prisco D, De Santis R, Mollica F, Ambrosio L, Rengo S, Nicolais L. Fiber post adhesion to resin luting cements in the restoration of endodontically-treated teeth. Operative Dentistry. 2003; 28: 515-521. 97. Patierno JM, Rueggeberg FA, Anderson RW, Weller RN, Pashley DH. Push out strength and SEM evaluation of resin composite bonded to internal cervical dentin. Endodontics & Dental Traumatology. 1996; 12: 227-236. 98. Muniz L, Mathias P. The influence of sodium hypochlorite and root canal sealers on post retention in different dentin regions. Operative Dentistry. 2005; 30: 533-539. 99. Baldissara P, Zicari F, Valandro LF, Scotti R. Effect of root canal treatments on quartz fiber posts bonding to root dentin. Journal of Endodontics. 2006; 32: 985-988. 100. Vano M, Cury AH, Goracci C, Chieffi N, Gabriele M, Tay FR, Ferrari M. The effect of immediate versus delayed cementation on the retention of different types of fiber post in canals obturated using a eugenol sealer. Journal of Endodontics. 2006; 32: 882-885. 101. Bell AM, Lassila LV, Kangasniemi I, Vallittu PK. Bonding of fibre-reinforced composite post to root canal dentin. J Dent. 2005; 33: 533-539. 102. Perdigao J, Geraldeli S, Lee IK. Push-out bond strengths of tooth-colored posts bonded with different adhesive systems. Am J Dent. 2004; 17: 422-426. 103. Cury AH, Goracci C, Navarro MFL, Carvalho RM, Sadek FT, Tay FR, Ferrari M. Effect of hygroscopic expansion on the push-out resistance of glass ionomer-based cements used for the luting of glass fiber posts. Journal of Endodontics. 2006; 32: 537-540. 104. Sadek FT, Goracci C, Monticelli F, Grandini S, Cury AH, Tay F, Ferrari M. Immediate and 24-hour evaluation of the interfacial strengths of fiber posts. J Endod. 2006; 32: 1174-1177. 105. Perez BE, Barbosa SH, Melo RM, Zamboni SC, Ozcan M, Valandro LF, Bottino MA. Does the thickness of the resin cement affect the bond strength of a fiber post to the root dentin? Int J Prosthodont. 2006; 19: 606-609. 106. Bolhuis H, de Gee AJ, Feilzer A. The influence of fatigue loading on the quality of the cement layer and retention strength of carbon fiber post-resin composite core restorations. Operative Dentistry. 2005; 30: 220-227. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/41742 | - |
| dc.description.abstract | 隨著美容牙科的盛行,樹脂複合材料的快速發展,對牙體復形的要求也從不間斷,因此在牙科材料上不斷改良、推陳出新,只為求得更完美的修復。本研究團隊相繼研究開發針對在根管治療後維持牙體上所使用之材料,從中心根柱到外圍與牙齒黏著所用之黏著劑(cement)皆有不錯的效果;而先前在與牙齒之黏著系統研究中,團隊研發之樹脂黏著劑(resin cement)所搭配使用的黏合劑為市售產品OptiBond Solo Plus,因此在本實驗中使用團隊研發之樹脂黏合劑,並以先前團隊中發展之樹脂基質為基本的樹脂成分,研究在此黏著系統下之黏合劑所需因子,以提供研發增強與牙本質黏著強度之黏合劑。
實驗中利用Bis-GMA(Bisphenol-A-glycidyl dimethacrylate)與TEGDMA(triethylene glycol dimethacrylate)為黏合劑的樹脂單體,分別加入不同的單體或溶劑,探討對牙本質之黏著能力的影響;本實驗利用接觸角的量測去觀察黏合劑對酸蝕過的牙本質之潤濕能力,實驗發現,所加入的單體與溶劑皆可以提升黏合劑對牙本質的潤濕能力;另外,利用微拉伸測試法以及推離鍵結測試法來量測樹脂黏著劑搭配黏合劑的使用對牙本質的黏著強度,分別探討不同成分對黏著效果的影響,並藉由掃描式電子顯微鏡觀察測試後之牙齒破壞面的微結構;結果發現,在我們所發展的黏合系統,對酸蝕過的牙本質已具有不錯的潤濕能力,能進入牙小管以及牙本質的空隙,但與牙本質的黏著力,仍有待進一步改善。 | zh_TW |
| dc.description.abstract | Development of resin composites advances very fast because of the demand of esthetic dentistry. For better dental restoration, various kinds of new materials have been developed. Our research group studies new materials for endodontic therapy. We have developed new post and resin cement having high binding strength to the root canal dentin. However, the high binding strength relies on using the commercial product OptiBond Solo Plus as the bonding agent. The aim of this study is to explore the role of bonding agent in enhancing the binding strength to dentin, as a first step to develop new bonding agents suitable for the post and resin cement that we developed.
Bis-GMA (bisphenol-A-glycidyl dimethacrylate) and TEGDMA (triethylene glycol dimethacrylate) were used as the resin monomers of the bonding agents. Various of monomers and solvents were added in the resin monomers to enhance their binding strength to dentin. The wetting ability of the bonding agents on the etched dentin surface was evaluated by using the contact angle measurement. The results showed that all the additives elevated the wetting ability. Also, the micro-tensile bond test and the push-out bond test were used to evaluate the adhesion strength between dentin and the bonding agents, together with examining the microstructure of dentin surface, to study the influence of the additives on binding strength to dentin. The results indicated that bonding agents we developed had good wetting ability on dentin surface, but further enhancement of their binding strength is still needed. | en |
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| dc.description.tableofcontents | 誌謝 I
中文摘要 III Abstract V 總目錄 VII 表目錄 XIII 圖目錄 XV 第一章 緒論 1 第二章 文獻回顧 3 2-1 牙齒的結構 3 2-1-1 牙釉質 3 2-1-2 牙本質 4 2-1-3 牙髓 7 2-1-4 牙骨質(cementum) 7 2-2 牙體復形(Dental Restoration) 7 2-2-1 直接修復(direct restoration) 9 2-2-2 間接修復(indirect restoration) 9 2-2-3 修復材及其優缺點 9 2-2-3-1 金屬 10 2-2-3-2 金和金 10 2-2-3-3 普通金屬合金 11 2-2-3-4 牙齒汞齊填充物(dental amalgam fillings) 11 2-2-3-5 陶瓷(porcelain�ceramic) 12 2-2-3-6 金屬燒附陶瓷(porcelain fused to metal, PFM) 13 2-2-3-7 複合樹脂填充物(composite resin fillings) 13 2-2-3-8 玻璃離子聚合物黏土(glass-ionomer cement) 14 2-2-3-9 樹脂離子聚合物黏土(resin-ionomer cement) 14 2-3 牙本質黏合劑(Dentin Bonding Agent) 15 2-3-1 牙本質之黏著 15 2-3-2 牙本質黏合劑之發展 17 2-3-2-1 第一代(First Generation) 18 2-3-2-2 第二代(Second Generation) 18 2-3-2-3 第三代(Third Generation) 19 2-3-2-4 第四代(Fourth Generation) 20 2-3-2-5 第五代(Fifth Generation) 22 2-3-2-6 第六代(Sixth Generation) 22 2-3-2-7 第七代(Seventh Generation) 23 2-3-3 理想的牙本質黏合劑 24 2-3-4 牙本質黏合劑之應用 25 2-4 黏合劑之常用主要成分 26 2-4-1 樹脂單體 26 2-4-2 功能性單體 27 2-4-3 酸劑 29 2-4-4 溶劑 29 2-4-5 起始劑以及填充物 30 2-5 黏著強度之測試方法 31 2-5-1 微拉伸測試法(micro-tensile test) 32 2-5-2 推離測試法(push-out test) 34 第三章 實驗 37 3-1 實驗藥品 37 3-2 實驗儀器及裝置 41 3-3 實驗步驟與方法 42 3-3-1 黏合劑之製備 43 3-3-1-1 樹脂基材(resin matrix)之配製 43 3-3-1-2 黏合劑之配製 44 3-3-2 resin cement與黏合劑之黏著強度測試 47 3-3-3 黏合劑對牙本質之潤濕能力 48 3-3-4 牙齒試片之製備 49 3-3-4-1 微拉伸鍵結強度測試 49 3-3-4-2 推離鍵結強度測試 51 3-3-5 牙本質黏著強度之測試 55 3-3-5-1 微拉伸鍵結強度測試 55 3-3-5-2 推離鍵結強度測試 56 3-3-6 掃描式電子顯微鏡分析 58 第四章 結果與討論 59 4-1 黏合劑與IE-resin cement之黏著強度 59 4-2 黏合劑對牙本質之潤濕能力 60 4-3 IBOA與EHA在黏合劑中的角色 62 4-4 HEMA及其含量對黏合劑的影響 63 4-5 溶劑乙醇對黏合劑的影響 65 4-6 IBOA及EHA與乙醇對含有HEMA之黏合劑的影響 67 4-6-1 IBOA與EHA於黏合劑mH(30)之影響 67 4-6-2 乙醇於黏合劑mH(23)之影響 68 4-7 比較與市售黏合劑之差異 69 第五章 結論 87 第六章 未來工作 89 參考文獻 91 Appendix 105 | |
| dc.language.iso | zh-TW | |
| dc.subject | 推離鍵結測試 | zh_TW |
| dc.subject | 黏合劑 | zh_TW |
| dc.subject | 牙本質 | zh_TW |
| dc.subject | 接觸角 | zh_TW |
| dc.subject | 微拉伸測試 | zh_TW |
| dc.subject | dentin | en |
| dc.subject | push-out test | en |
| dc.subject | micro-tensile test | en |
| dc.subject | contact angle | en |
| dc.subject | bonding agent | en |
| dc.title | 以樹脂複合材研發牙本質黏合劑之研究 | zh_TW |
| dc.title | Investigation of the development of dentin bonding agent with resin composite | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 99-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.coadvisor | 李伯訓(Bor-Shiunn Lee) | |
| dc.contributor.oralexamcommittee | 戴子安(Chi-An Dai),鄭國忠(Kuo-Chung Cheng) | |
| dc.subject.keyword | 黏合劑,牙本質,接觸角,微拉伸測試,推離鍵結測試, | zh_TW |
| dc.subject.keyword | bonding agent,dentin,contact angle,micro-tensile test,push-out test, | en |
| dc.relation.page | 112 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2011-08-15 | |
| dc.contributor.author-college | 工學院 | zh_TW |
| dc.contributor.author-dept | 化學工程學研究所 | zh_TW |
| 顯示於系所單位: | 化學工程學系 | |
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