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DENTAL MATERIALS 24(2008)289-298 [18] Hannink RH], Howar rd C), Kisi EH, Swain MV. Relationship [36 Swain MV, Rose LRF Strength limitations of between fracture toughness and phase assemblage in transformation-toughened zirconia alloys. J Am Ceram Soc Mg-PSZ. J Am Ceram Soc 1994; 77(2: 571-9 1986;69(7):511-8 [19 Sundh A, Sjoegren G Fracture resistance of all-ceramic [37 Dauskardt RH, Marshall DB, Ritchie RO Cyclic fatigue-crack zirconia bridges with differing phase stabilizers and quality propagation in magnesia-partially stabilized zirconia of sintering. Dent Mater 2006; 22: 778-84. ceramics.J Am Ceram Soc 1990; 73(4): 893-903 [20 Gupta TK, Bechtold JH, Kuznicki RC, CadoffLH, Rossing BR. 38 Liu S-Y, Chen I-W Fatigue of yttria-stabilized zirconia: Il, Stabilization of tetragonal phase in polycrystalline zirconia. J crack propagation, fatigue striations, and short-crack Mater Sci1977;12(12):2421 behavior. J Am Ceram Soc 1991; 74(6: 1206-16 [21] Gupta TK, Lange FF, Bechtold JH. Effect of stress-induced 39 Hoffman M, Dauskardt RH, Mai Y-W, Ritchie RO. A review phase transformation on the properties of polycrystalline the mechanics and mechanisms of cyclic fatigue-crack zirconia containing metastable tetragonal phase. J Mater Sci propagation in transformation-toughened zirconia 1978;13:1464-70 ceramics. In: Badwal SPS, Bannister M, Hannink RHJ [22 Matsui K, Horikoshi H, Ohmichi N, Ohgai M, Yoshida H, editors. Science and technology of zirconia V. Lancaster, PA Ikuhara Y. Cubic-formation and grain-growth mechanisms Technomic Publ. Co; 1993. p 321 tetragonal zirconia polycrystal. J Am Ceram So [40 Kobayashi K, Kuwajima H, Masaki T Phase change and 00386(8):1401-8 mechanical properties of ZrO2-Y2O3 solid electrolyte after [23] Bravo-Leon A, Morikawa Y, Kawahara M, Mayo M]. Fracture aging. Solid State Ionics 1981: 3/4: 489-95 toughness of nanocrystalline tetragonal zirconia with low [41 Sato TMS Transformation of yttria-doped tetragonal Zro2 yttria content. Acta Mater 2002: 50: 4555-62. lycrystals by annealing in water. J Am Ceram Soc [24 Kim D-J. Effect of Ta2O5, Nb2 O5, and HfO2 alloying on the 198568(6):356-9 transformability of Y2O3-stabilized tetragonal ZrO2JAm [42] Guo X On the degradation of zirconia ceramics during Ceram soc199073(1):115-20 low-temperature annealing in water or water vapor. J Phys en GSAM, Bouma Js, Winnubst AJA, Burggraff AJ Chem solids199960(4):53946 Mechanical properties of ultra-fine grained zirconia [43 Sato T, Ohtaki S, Shimada M. Transformation of yttria ceramics. J Mater Sci 1992: 27: 4429-38 /-temperature annealing in [26 Becher PF, Swain MV Grain-size-dependent transformation air. J Mater Sci 1985; 20(4): 1466-70 behavior in polycrystalline tetragonal zirconia. J Am Ceram [44 Sato T, Shimada M. Crystalline phase-change in 1992:75(3)493-502 yttria-partially stabilized zirconia by low-temperature [27 Schubert H Anisotropic thermal expansion coefficients of annealing. 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J Am Ceram So Eur Ceram Soc 1995: 15: 485-502. 173-80 [49 Deville S, Chevalier J, Gremillard L Influence of surface finish [31] Lutz EH, Claussen N, Swain MV K-curve behavior of duplex dual stresses on the ageing ceramics.J Am Ceram Soc 1991: 74(1): 11-8. grade zirconia. Biomaterials 2006; 27(10): 2186-5192 e) Swain MV Limitation of maximum strength of 50 Chevalier J, Deville S, Munch E, Jullian R, Lair F Critical effect rconia-toughened ceramics by transf of cubic phase on aging in 3mol% yttria-stabilized zirconia increment. J Am Ceram Soc 1985; 68(4): C-97-9 [33] Huebner H, Jillek W. Sub-critical crack extension and crack 2004;25(24):5539-45 resistance in polycrystalline alumina. J Mater Sci [51 Chevalier J. What future for zirconia as a biomaterial? 1977;12:117-25 Biomaterials 2006: 27(4): 535-43. [34 KnehansR, Steinbrech R, Schaaraechter W Increase of crack [52 Scott HG Phase relationships in the zirconia-yttria system J esistance during slow crack growth in Al2O3 bend Mater Sci1975;10:1527-35 pecimens. J Mater Sci 1983 18: 265-70 [53 Ruiz L, Readey M]. Effect of heat-treatment on grain size, [35] Marshall DB, James MR Reversible stress-induced phase assemblage, and mechanical properties of 3 mol% martensitic transformation in Zro2. J Am Ceram Soc Y-TZP. J Am Ceram Soc 1996: 79(9): 2331-40 1986;69(3)215-7298 dental materials 24 (2008) 289–298 [18] Hannink RHJ, Howard CJ, Kisi EH, Swain MV. Relationship between fracture toughness and phase assemblage in Mg-PSZ. J Am Ceram Soc 1994;77(2):571–9. [19] Sundh A, Sjoegren G. Fracture resistance of all-ceramic zirconia bridges with differing phase stabilizers and quality of sintering. Dent Mater 2006;22:778–84. [20] Gupta TK, Bechtold JH, Kuznicki RC, Cadoff LH, Rossing BR. Stabilization of tetragonal phase in polycrystalline zirconia. J Mater Sci 1977;12(12):2421–6. [21] Gupta TK, Lange FF, Bechtold JH. Effect of stress-induced phase transformation on the properties of polycrystalline zirconia containing metastable tetragonal phase. J Mater Sci 1978;13:1464–70. [22] Matsui K, Horikoshi H, Ohmichi N, Ohgai M, Yoshida H, Ikuhara Y. Cubic-formation and grain-growth mechanisms in tetragonal zirconia polycrystal. J Am Ceram Soc 2003;86(8):1401–8. [23] Bravo-Leon A, Morikawa Y, Kawahara M, Mayo MJ. Fracture toughness of nanocrystalline tetragonal zirconia with low yttria content. Acta Mater 2002;50:4555–62. [24] Kim D-J. Effect of Ta2O5, Nb2O5, and HfO2 alloying on the transformability of Y2O3-stabilized tetragonal ZrO2. J Am Ceram Soc 1990;73(1):115–20. [25] Theunissen GSAM, Bouma JS, Winnubst AJA, Burggraff AJ. Mechanical properties of ultra-fine grained zirconia ceramics. J Mater Sci 1992;27:4429–38. [26] Becher PF, Swain MV. Grain-size-dependent transformation behavior in polycrystalline tetragonal zirconia. J Am Ceram Soc 1992;75(3):493–502. [27] Schubert H. Anisotropic thermal expansion coefficients of Y2O3-stabilized tetragonal zirconia. J Am Ceram Soc 1986;69(3):270–1. [28] Fischer J, Stawarczyk B, Haemmerle CHF. Bonding of a Veneering Ceramic to Ce-TZP/Al2O3. Nanocomposite. IADR Abstract. http://iadr.confex.com/iadr/2006Brisb/ techprogram/abstract 79542.htm. [29] Heuer AH, Lange FF, Swain MV, Evans AG. Transformation toughening: an overview. J Am Ceram Soc 1986;69(3):i–iv. [30] Marshall DB. Strength characteristics of transformation-toughened zirconia. J Am Ceram Soc 1986;69(3):173–80. [31] Lutz EH, Claussen N, Swain MV. KR-curve behavior of duplex ceramics. J Am Ceram Soc 1991;74(1):11–8. [32] Swain MV. Limitation of maximum strength of zirconia-toughened ceramics by transformation toughening increment. J Am Ceram Soc 1985;68(4):C-97–9. [33] Huebner H, Jillek W. 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A review of the mechanics and mechanisms of cyclic fatigue-crack propagation in transformation-toughened zirconia ceramics. In: Badwal SPS, Bannister MJ, Hannink RHJ, editors. Science and technology of zirconia V. Lancaster, PA: Technomic Publ. Co; 1993. p. 321–38. [40] Kobayashi K, Kuwajima H, Masaki T. Phase change and mechanical properties of ZrO2-Y2O3 solid electrolyte after aging. Solid State Ionics 1981;3/4:489–95. [41] Sato TMS. Transformation of yttria-doped tetragonal ZrO2 polycrystals by annealing in water. J Am Ceram Soc 1985;68(6):356–9. [42] Guo X. On the degradation of zirconia ceramics during low-temperature annealing in water or water vapor. J Phys Chem Solids 1999;60(4):539–46. [43] Sato T, Ohtaki S, Shimada M. Transformation of yttria partially stabilized zirconia by low-temperature annealing in air. J Mater Sci 1985;20(4):1466–70. [44] Sato T, Shimada M. Crystalline phase-change in yttria-partially stabilized zirconia by low-temperature annealing. J Am Ceram Soc 1984;67(10):C212–3. [45] Chevalier J, Cales B, Drouin JM. Low-temperature aging of ` Y-TZP ceramics. J Am Ceram Soc 1999;82(8):2150–4. [46] Lange FF, Dunlop GL, Davis BI. Degradation during aging of transformation-toughened ZrO2-Y2O3 materials at 250 ◦C. J Am Ceram Soc 1986;69(3):237. [47] Cales B, Stefani Y, Lilley E. Long-term in vivo and in vitro aging of a zirconia ceramic used in orthopaedy. J Biomed Mater Res 1994;28:619–24. [48] Lawson S. Environmental degradation of zirconia ceramics. J Eur Ceram Soc 1995;15:485–502. [49] Deville S, Chevalier J, Gremillard L. Influence of surface finish and residual stresses on the ageing sensitivity of biomedical grade zirconia. Biomaterials 2006;27(10):2186–5192. [50] Chevalier J, Deville S, Munch E, Jullian R, Lair F. Critical effect ¨ of cubic phase on aging in 3mol% yttria-stabilized zirconia ceramics for hip replacement prosthesis. Biomaterials 2004;25(24):5539–45. [51] Chevalier J. What future for zirconia as a biomaterial? Biomaterials 2006;27(4):535–43. [52] Scott HG. Phase relationships in the zirconia-yttria system. J Mater Sci 1975;10:1527–35. [53] Ruiz L, Readey MJ. Effect of heat-treatment on grain size, phase assemblage, and mechanical properties of 3 mol% Y-TZP. J Am Ceram Soc 1996;79(9):2331–40
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