[1] Belli R, Wendler M, de Ligny D, et al. Chairside CAD/CAM materials. Part 1: Measurement of elastic constants and microstructural characterization [J]. Dent Mater, 2017, 33(1)∶84-98 [2] Gracis S, Thompson VP, Ferencz JL, et al. A new classification system for all-ceramic and ceramic-like restorative materials [J]. Int J Prosthodont, 2015, 28(3)∶227-235 [3] Powers JM, Sakaguchi RL. Craig’s restorative dental materials [M]. 12th ed. St Louis: Mosby, 2006∶253-275 [4] Wendler M, Belli R, Petschelt A, et al. Chairside CAD/CAM materials. Part 2: Flexural strength testing [J]. Dent Mater, 2017, 33(1)∶99-109 [5] Lawson NC, Bansal R, Burgess JO. Wear, strength, modulus and hardness of CAD/CAM restorative materials [J/CD]. Dent Mater, 2016, 32(11)∶e275-e283 [6] Curran P, Cattani-Lorente M, Anselm Wiskott HW, et al. Grinding damage assessment for CAD-CAM restorative materials [J]. Dent Mater, 2017, 33(3)∶294-308 [7] Flury S, Diebold E, Peutzfeldt A, et al. Effect of artificial toothbrushing and water storage on the surface roughness and micromechanical properties of tooth-colored CAD-CAM materials [J]. J Prosthet Dent, 2017, 117(6)∶767-774 [8] Tsitrou EA, Northeast SE, Van NR. Brittleness index of machinable dental materials and its relation to the marginal chipping factor [J]. J Dent, 2007, 35(12)∶897-902 [9] Chavali R, Nejat AH, Lawson NC. Machinability of CAD-CAM materials [J]. J Prosthet Dent, 2017, 118(2)∶194-199 [10] Flury S, Schmidt SZ, Peutzfeldt A, et al. Dentin bond strength of two resin-ceramic computer-aided design/computer-aided manufacturing (CAD/CAM) materials and five cements after six months storage [J]. Dent Mater J, 2016, 35(5)∶728-735 [11] Peumans M, Valjakova EB, De Munck J, et al. Bonding effectiveness of luting composites to different CAD/CAM materials [J]. J Adhes Dent, 2016, 18(4)∶289-302 [12] Stawarczyk B, Krawczuk A, Ilie N. Tensile bond strength of resin composite repair in vitro using different surface preparation conditionings to an aged CAD/CAM resin nanoceramic [J]. Clin Oral Investig, 2015, 19(2)∶299-308 [13] 阎雪冰,王勇,郑刚,等.三种树脂粘接剂对可切削复合树脂与牙本质粘接强度的比较研究[J].中华口腔医学杂志,2009,44(1)∶46-49 [14] 王勇,崔福斋,刘小舟,等.SiO2、ZrO2作为填料的牙科可切削聚合物基复合材料的制备[J].稀有金属材料与工程,2009,38(2)∶846-849 [15] 张曼曼,曾剑玉,李欣.可切削复合树脂材料磨损性能的研究[J].北京口腔医学,2016,24(5)∶250-253 [16] 冷鑫,朱松.口腔修复材料人工老化方法[J].口腔医学研究,2011,27(10)∶926-927 [17] 李欣,曾剑玉.冷热循环老化对可切削复合树脂表面粗糙度的影响[J].北京口腔医学,2016,24(3)∶127-132 [18] Kim KH, Loch C, Waddell JN, et al. Surface characteristics and biofilm development on selected dental ceramic materials [J]. Int J Dent, 2017, 2017∶7627945 [19] Alharbi A, Ardu S, Bortolotto T, et al. Stain susceptibility of composite and ceramic CAD/CAM blocks versus direct resin composites with different resinous matrices [J]. Odontology, 2017, 105(2)∶162-169 [20] Nguyen JF, Migonney V, Ruse ND, et al. Resin composite blocks via high-pressure high-temperature polymerization [J]. Dent Mater, 2012, 28(5)∶529-534 [21] Ruse ND, Sadoun MJ. Resin-composite blocks for dental CAD/CAM applications [J]. J Dent Res, 2014, 93(12)∶1232-1234 [22] Rocca GT, Sedlakova P, Saratti CM, et al. Fatigue behavior of resin-modified monolithic CAD-CAM RNC crowns and endocrowns [J]. Dent Mater, 2016, 32(12)∶e338-e350 [23] Zimmermann M, Koller C, Hickel R, et al. Chairside treatment of amelogenesis imperfecta, including establishment of a new vertical dimension with resin nanoceramic and intraoral scanning [J]. J Prosthet Dent, 2016, 116(3)∶309-313 [24] Schepke U, Meijer HJ, Vermeulen KM, et al. Clinical bonding of resin nano ceramic restorations to zirconia abutments: a case series within a randomized clinical trial [J]. Clin Implant Dent Relat Res, 2016, 18(5)∶984-992 [25] Krejci I, Daher R. Stress distribution difference between Lava Ultimate full crowns and IPS e.max CAD full crowns on a natural tooth and on tooth-shaped implant abutments [J]. Odontology, 2017, 105(2)∶254-256 |