Int J Stomatol ›› 2026, Vol. 53 ›› Issue (5): 676-682.doi: 10.7518/gjkq.2026136
• Digital Oral Medicine Column • Previous Articles
Zhouchuan Cao1(
),Jing Zhao1,Keying Shi2,Yuanna Zheng1,2(
)
CLC Number:
| [1] | Denry I, Kelly JR. State of the art of zirconia for dental applications[J]. Dent Mater, 2008, 24(3): 299-307. |
| [2] | Teegen IS, Schadte P, Wille S, et al. Comparison of properties and cost efficiency of zirconia processed by DIW printing, casting and CAD/CAM-milling[J]. Dent Mater, 2023, 39(7): 669-676. |
| [3] | Abduo J, Ho G, Centorame A, et al. Marginal accuracy of monolithic and veneered zirconia crowns fabricated by conventional and digital workflows[J]. J Prosthodont, 2023, 32(8): 706-713. |
| [4] | Leitão CIMB, de Oliveira Fernandes GV, Azevedo LPP, et al. Clinical performance of monolithic CAD/CAM tooth-supported zirconia restorations: syste-matic review and meta-analysis[J]. J Prosthodont Res, 2022, 66(3): 374-384. |
| [5] | Xiang D, Xu YX, Bai W, et al. Dental zirconia fabricated by stereolithography: accuracy, translucency and mechanical properties in different build orientations[J]. Ceram Int, 2021, 47(20): 28837-28847. |
| [6] | 麻健丰, 林婷婷, 黄盛斌. 3D打印技术在牙科陶瓷成型领域的研究进展[J]. 口腔医学研究, 2019, 35(2): 107-112. |
| Ma JF, Lin TT, Huang SB. Research progress of 3D printing in manufacturing dental ceramics[J]. J Oral Sci Res, 2019, 35(2): 107-112. | |
| [7] | Branco AC, Colaço R, Figueiredo-Pina CG, et al. Recent advances on 3D-printed zirconia-based dental materials: a review[J]. Materials, 2023, 16(5): 1860. |
| [8] | Ebert J, Özkol E, Zeichner A, et al. Direct inkjet printing of dental prostheses made of zirconia[J]. J Dent Res, 2009, 88(7): 673-676. |
| [9] | Lerner H, Nagy K, Pranno N, et al. Trueness and precision of 3D-printed versus milled monolithic zirconia crowns: an in vitro study[J]. J Dent, 2021, 113: 103792. |
| [10] | Abualsaud R, Abussaud M, Assudmi Y, et al. Phy-siomechanical and surface characteristics of 3D-printed zirconia: an in vitro study[J]. Materials, 2022, 15(19): 6988. |
| [11] | Lyu JZ, Yang X, Li Y, et al. Effect of build angle on the dimensional accuracy of monolithic zirconia crowns fabricated with the nanoparticle jetting technique[J]. J Prosthet Dent, 2023, 130(4): 613.e1-613.e8. |
| [12] | Suominen JM, Frankberg EJ, Vallittu PK, et al. Three-dimensional printing of zirconia: characterization of early stage material properties[J]. Biomater Investig Dent, 2019, 6(1): 23-31. |
| [13] | Cameron AB, Choi JJE, Ip A, et al. Assessment of the trueness of additively manufactured mol3% zirconia crowns at different printing orientations with an industrial and desktop 3D printer compared to subtractive manufacturing[J]. J Dent, 2024, 144: 104942. |
| [14] | Lu YQ, Wang L, de Oliveira Dal Piva AM, et al. Effect of printing layer orientation and polishing on the fatigue strength of 3D-printed dental zirconia[J]. Dent Mater, 2024, 40(2): 190-197. |
| [15] | Marsico C, Øilo M, Kutsch J, et al. Vat polymerization-printed partially stabilized zirconia: mechanical properties, reliability and structural defects[J]. Addit Manuf, 2020, 36: 101450. |
| [16] | Miura S, Shinya A, Ishida Y, et al. Mechanical and surface properties of additive manufactured zirconia under the different building directions[J]. J Prosthodont Res, 2022, 67(3): 410-417. |
| [17] | Rane K, Farid MA, Hassan W, et al. Effect of prin-ting parameters on mechanical properties of extrusion-based additively manufactured ceramic parts[J]. Ceram Int, 2021, 47(9): 12189-12198. |
| [18] | Coppola B, Schmitt J, Lacondemine T, et al. Digital light processing stereolithography of zirconia cera-mics: slurry elaboration and orientation-reliant mechanical properties[J]. J Eur Ceram Soc, 2022, 42(6): 2974-2982. |
| [19] | Quan HY, Zhang T, Xu H, et al. Photo-curing 3D printing technique and its challenges[J]. Bioact Mater, 2020, 5(1): 110-115. |
| [20] | Willems E, Turon-Vinas M, Camargo dos Santos B, et al. Additive manufacturing of zirconia ceramics by material jetting[J]. J Eur Ceram Soc, 2021, 41(10): 5292-5306. |
| [21] | Zhong SP, Shi QM, Deng YL, et al. High-performance zirconia ceramic additively manufactured via NanoParticle Jetting[J]. Ceram Int, 2022, 48(22): 33485-33498. |
| [22] | Schweiger J, Edelhoff D, Güth JF. 3D printing in digital prosthetic dentistry: an overview of recent developments in additive manufacturing[J]. J Clin Med, 2021, 10(9): 2010. |
| [23] | Khorsandi D, Fahimipour A, Abasian P, et al. 3D and 4D printing in dentistry and maxillofacial surgery: printing techniques, materials, and applications[J]. Acta Biomater, 2021, 122: 26-49. |
| [24] | Jerman E, Lümkemann N, Eichberger M, et al. Eva-luation of translucency, Marten's hardness, biaxial flexural strength and fracture toughness of 3Y-TZP, 4Y-TZP and 5Y-TZP materials[J]. Dent Mater, 2021, 37(2): 212-222. |
| [25] | Kyung KY, Park JM, Heo SJ, et al. Comparative analysis of flexural strength of 3D printed and milled 4Y-TZP and 3Y-TZP zirconia[J]. J Prosthet Dent, 2024, 131(3): 529.e1-529.e9. |
| [26] | Hadian A, Fricke M, Liersch A, et al. Material extrusion additive manufacturing of zirconia parts using powder injection molding feedstock compositions[J]. Addit Manuf, 2022, 57: 102966. |
| [27] | Sarwar WA, Kang JH, Yoon HI. Optimized zirconia 3D printing using digital light processing with continuous film supply and recyclable slurry system[J]. Materials, 2021, 14(13): 3446. |
| [28] | Osman RB, van der Veen AJ, Huiberts D, et al. 3D-printing zirconia implants; a dream or a reality? An in-vitro study evaluating the dimensional accuracy, surface topography and mechanical properties of printed zirconia implant and discs[J]. J Mech Behav Biomed Mater, 2017, 75: 521-528. |
| [29] | Zhang Y. Making yttria-stabilized tetragonal zirconia translucent[J]. Dent Mater, 2014, 30(10): 1195-1203. |
| [30] | dos Santos C, Rosa GO, Quintino MN, et al. Effect of surface finishing and thickness on the translucency of zirconia dental ceramics[J]. Ceram Int, 2020, 46(6): 7748-7755. |
| [31] | Schabbach LM, dos Santos BC, De Bortoli LS, et al. Application of Kubelka-Munk model on the optical characterization of translucent dental zirconia[J]. Mater Chem Phys, 2021, 258: 123994. |
| [32] | Fathy SM, El-Fallal AA, El-Negoly SA, et al. Translucency of monolithic and core zirconia after hydrothermal aging[J]. Acta Biomater Odontol Scand, 2015, 1(2/3/4): 86-92. |
| [33] | Lu Y, Wang L, Dal Piva AMO, et al. Influence of surface finishing and printing layer orientation on surface roughness and flexural strength of stereolithography-manufactured dental zirconia[J]. J Mech Behav Biomed Mater, 2023, 143: 105944. |
| [34] | dos Santos Calderon P, Kogawa EM, Lauris JRP, et al. The influence of gender and bruxism on the human maximum bite force[J]. J Appl Oral Sci, 2006, 14(6): 448-453. |
| [35] | Park JY, Jung YN, Jang KJ, et al. Effect of axis change on shrinkage rate of 3D-printed bioceramic zirconia fabricated via digital light processing[J]. Biomimetics, 2025, 10(3): 140. |
| [36] | Fu XS, Zou B, Xing HY, et al. Effect of printing strategies on forming accuracy and mechanical pro-perties of ZrO2 parts fabricated by SLA technology[J]. Ceram Int, 2019, 45(14): 17630-17637. |
| [37] | Yu XH, Zhao YH, Wang ZG, et al. Microstructure formation mechanisms and property regulation me-thods during ceramic additive manufacturing[J]. J Manuf Process, 2024, 131: 1548-1564. |
| [38] |
Zhai ZD, Qian C, Jiao T, et al. Zirconia specimens printed by vat photopolymerization: mechanical pro-perties, fatigue properties, and fractography analysis[J]. J Prosthodont, 2024. doi: 10.1111/jopr.13942 .
doi: 10.1111/jopr.13942 |
| [39] | Mou ZW, Zhong JM, Wang F, et al. Zirconia crowns manufactured using digital light processing: effects of build angle and layer thickness on the accuracy[J]. J Dent, 2024, 151: 105359. |
| [40] | Osman R, Alharbi N, Wismeijer D. Build angle: does it influence the accuracy of 3D-printed dental restorations using digital light-processing technology[J]. Int J Prosthodont, 2017, 30(2): 182-188. |
| [41] | Xing HY, Zou B, Li SS, et al. Study on surface qua-lity, precision and mechanical properties of 3D prin-ted ZrO2 ceramic components by laser scanning stereolithography[J]. Ceram Int, 2017, 43(18): 16340-16347. |
| [42] | 王亚宁, 张玉琪, 宋索成, 等. 氧化锆陶瓷扫描光固化成形与脱脂烧结工艺研究[J]. 无机材料学报, 2022, 37(3): 303-309. |
| Wang YN, Zhang YQ, Song SC, et al. Laser stereolithography for zirconia ceramic fabrication and its debinding and sintering process[J]. J Inorg Mater, 2022, 37(3): 303-309. |
|
||