Dental Materyal Olarak 3D Basım Zirkonyaya Genel Bir Bakış
Özet
Mekanik özelliklerinin iyi olması, tatmin edici estetik kalitesi, biyolojik stabilitesi ile zirkonya diş hekimliği alanında sıklıkla kullanılan bir materyaldir. Tıbbi ve dental uygulamalarda, özellikle kişiselleştirilmiş üretim yapan cihazlarla entegre edildiğinde, zirkonya kullanılarak istenilen konfigürasyonda üretimler gerçekleştirilebilmektedir. 3D basım tekniği, zirkonya malzemenin kullanımında son yıllarda dikkat çekici ve tartışmalı bir yöntem olarak öne çıkmıştır. Eklemeli sistem (ES) ise, geleneksel sistemlerde elde edilemeyen çok sayıda üretim imkânını beraberinde getirmektedir. Bu derlemede, ES zirkonyanın fiziksel ve adeziv özellikleri, doğruluk, biyouyumluluk ve klinik uygulamaları incelenmiştir. Ayrıca, mevcut kısıtlamalar ile ES zirkonyanın gelişimine yönelik öngörüler ve öneriler sunulmaktadır.
Referanslar
J. R. Strub, E. D. Rekow, and S. Witkowski, “Computer-aided design and fabrication of dental restorations: Current systems and future possibilities,” Journal of the American Dental Association, vol. 137, no. 9, pp. 1289–1296, 2006, doi: 10.14219/jada.archive.2006.0389.
H. Lerner, K. Nagy, N. Pranno, F. Zarone, O. Admakin, and F. Mangano, “Trueness and precision of 3D-printed versus milled monolithic zirconia crowns: an in vitro study,” J Dent, vol. 113, p. 103792, Oct. 2021, doi: 10.1016/j.jdent.2021.103792.
H. Wang, M. N. Aboushelib, and A. J. Feilzer, “Strength influencing variables on CAD/CAM zirconia frameworks,” Dental Materials, vol. 24, no. 5, pp. 633–638, May 2008, doi: 10.1016/j.dental.2007.06.030.
Y. Lu et al., “Flexural strength and Weibull analysis of Y-TZP fabricated by stereolithographic additive manufacturing and subtractive manufacturing,” J Eur Ceram Soc, vol. 40, no. 3, pp. 826–834, Mar. 2020, doi: 10.1016/j.jeurceramsoc.2019.10.058.
F. Doreau, C. Chaput, and T. Chartier, “Stereolithography for Manufacturing Ceramic Parts,” Adv Eng Mater, vol. 2, no. 8, pp. 493–496, Aug. 2000, doi: 10.1002/1527-2648(200008)2:8<493::AID-ADEM493>3.0.CO;2-C.
J. Ebert et al., “Direct Inkjet Printing of Dental Prostheses Made of Zirconia,” J Dent Res, vol. 88, no. 7, pp. 673–676, Jul. 2009, doi: 10.1177/0022034509339988.
L. Nickels, “World’s first patient-specific jaw implant,” Metal Powder Report, vol. 67, no. 2, pp. 12–14, Mar. 2012, doi: 10.1016/S0026-0657(12)70128-5.
M. Figliuzzi, F. Mangano, and C. Mangano, “A novel root analogue dental implant using CT scan and CAD/CAM: selective laser melting technology,” Int J Oral Maxillofac Surg, vol. 41, no. 7, pp. 858–862, Jul. 2012, doi: 10.1016/j.ijom.2012.01.014.
E. Peng, D. Zhang, and J. Ding, “Ceramic Robocasting: Recent Achievements, Potential, and Future Developments,” Advanced Materials, vol. 30, no. 47, Nov. 2018, doi: 10.1002/adma.201802404.
H. Kihara et al., “Applications of three-dimensional printers in prosthetic dentistry,” J Oral Sci, vol. 63, no. 3, pp. 212–216, 2021, doi: 10.2334/josnusd.21-0072.
C. Kirsch, A. Ender, T. Attin, and A. Mehl, “Trueness of four different milling procedures used in dental CAD/CAM systems,” Clin Oral Investig, vol. 21, no. 2, pp. 551–558, Mar. 2017, doi: 10.1007/s00784-016-1916-y.
M. T.- Ceramics–Silikáty and undefined 2008, “Effect of grain size on mechanical properties of 3Y-TZP ceramics,” irsm.cas.czM TrunecCeramics–Silikáty, 2008•irsm.cas.cz, Accessed: Mar. 10, 2025. [Online]. Available: https://www2.irsm.cas.cz/materialy/cs_content/2008/Trunec_CS_2008_0000.pdf
F. Zhang, B. Van Meerbeek, and J. Vleugels, “Importance of tetragonal phase in high-translucent partially stabilized zirconia for dental restorations,” Dental Materials, vol. 36, no. 4, pp. 491–500, Apr. 2020, doi: 10.1016/j.dental.2020.01.017.
S. Wille, R. Möller, and M. Kern, “Influence of shading on zirconia’s phase transformation and flexural strength after artificial aging,” Dental Materials, vol. 39, no. 8, pp. 702–707, Aug. 2023, doi: 10.1016/j.dental.2023.06.005.
Z. Zhai and J. Sun, “Research on the low-temperature degradation of dental zirconia ceramics fabricated by stereolithography,” Journal of Prosthetic Dentistry, vol. 130, no. 4, pp. 629–638, Oct. 2023, doi: 10.1016/j.prosdent.2021.11.012.
H. Yang, Y.-L. Xu, G. Hong, and H. Yu, “Effects of low-temperature degradation on the surface roughness of yttria-stabilized tetragonal zirconia polycrystal ceramics: A systematic review and meta-analysis,” J Prosthet Dent, vol. 125, no. 2, pp. 222–230, Feb. 2021, doi: 10.1016/j.prosdent.2020.01.005.
J. Chevalier, S. Deville, E. Münch, R. Jullian, and F. Lair, “Critical effect of cubic phase on aging in 3 mol% yttria-stabilized zirconia ceramics for hip replacement prosthesis,” Biomaterials, vol. 25, no. 24, pp. 5539–5545, Nov. 2004, doi: 10.1016/J.BIOMATERIALS.2004.01.002.
H. Wu et al., “Preparation of alumina-toughened zirconia via 3D printing and liquid precursor infiltration: manipulation of the microstructure, the mechanical properties and the low temperature aging behavior,” J Mater Sci, vol. 54, no. 10, pp. 7447–7459, May 2019, doi: 10.1007/s10853-019-03432-9.
Y. Hao et al., “Influence of Dental Prosthesis and Restorative Materials Interface on Oral Biofilms,” Int J Mol Sci, vol. 19, no. 10, p. 3157, Oct. 2018, doi: 10.3390/ijms19103157.
M. Zhang, Z. Zhang, N. Ding, and D. Zheng, “Effect of airborne-particle abrasion of presintered zirconia on surface roughness and bacterial adhesion,” J Prosthet Dent, vol. 113, no. 5, pp. 448–452, May 2015, doi: 10.1016/j.prosdent.2014.12.012.
D. Xiang, Y. Xu, W. Bai, and H. Lin, “Dental zirconia fabricated by stereolithography: Accuracy, translucency and mechanical properties in different build orientations,” Ceram Int, vol. 47, no. 20, pp. 28837–28847, Oct. 2021, doi: 10.1016/J.CERAMINT.2021.07.044.
R. B. Osman, A. J. van der Veen, D. Huiberts, D. Wismeijer, and N. Alharbi, “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 Mech Behav Biomed Mater, vol. 75, pp. 521–528, Nov. 2017, doi: 10.1016/J.JMBBM.2017.08.018.
C. Branco et al., “Suitability of 3D printed pieces of nanocrystalline zirconia for dental applications,” Dental Materials, vol. 36, no. 3, pp. 442–455, Mar. 2020, doi: 10.1016/j.dental.2020.01.006.
W. Harrer, M. Schwentenwein, T. Lube, and R. Danzer, “Fractography of zirconia-specimens made using additive manufacturing (LCM) technology,” J Eur Ceram Soc, vol. 37, no. 14, pp. 4331–4338, Nov. 2017, doi: 10.1016/j.jeurceramsoc.2017.03.018.
K. Ebeid, S. Wille, A. Hamdy, T. Salah, A. El-Etreby, and M. Kern, “Effect of changes in sintering parameters on monolithic translucent zirconia,” Dent Mater, vol. 30, no. 12, pp. e419–e424, Dec. 2014, doi: 10.1016/J.DENTAL.2014.09.003.
Y. Tian et al., “A Review of 3D Printing in Dentistry: Technologies, Affecting Factors, and Applications,” Scanning, vol. 2021, 2021, doi: 10.1155/2021/9950131.
Z. Mei et al., “Determination of hardness and fracture toughness of Y‐TZP manufactured by digital light processing through the indentation technique,” Wiley Online LibraryZ Mei, Y Lu, Y Lou, P Yu, M Sun, X Tan, J Zhang, L Yue, H YuBioMed research international, 2021•Wiley Online Library, vol. 2021, 2021, doi: 10.1155/2021/6612840.
R. Abualsaud et al., “Physiomechanical and Surface Characteristics of 3D-Printed Zirconia: An In Vitro Study,” Materials, vol. 15, no. 19, p. 6988, Oct. 2022, doi: 10.3390/ma15196988.
N. Baysal, Ü. Tuğba Kalyoncuoğlu, and S. Ayyıldız, “Mechanical Properties and Bond Strength of Additively Manufactured and Milled Dental Zirconia: A Pilot Study,” Journal of Prosthodontics, vol. 31, no. 7, pp. 629–634, Aug. 2022, doi: 10.1111/JOPR.13472.
M. Revilla-León, D. Mostafavi, M. M. Methani, and A. Zandinejad, “Manufacturing accuracy and volumetric changes of stereolithography additively manufactured zirconia with different porosities,” J Prosthet Dent, vol. 128, no. 2, pp. 211–215, Aug. 2022, doi: 10.1016/j.prosdent.2020.06.021.
C. E. Ille et al., “Exploring the Properties and Indications of Chairside CAD/CAM Materials in Restorative Dentistry,” J Funct Biomater, vol. 16, no. 2, Feb. 2025, doi: 10.3390/JFB16020046.
Ioannidis, J. M. Park, J. Hüsler, D. Bomze, S. Mühlemann, and M. Özcan, “An in vitro comparison of the marginal and internal adaptation of ultrathin occlusal veneers made of 3D-printed zirconia, milled zirconia, and heat-pressed lithium disilicate,” J Prosthet Dent, vol. 128, no. 4, pp. 709–715, Oct. 2022, doi: 10.1016/j.prosdent.2020.09.053.
K. Rabel et al., “Zirconia fixed dental prostheses fabricated by 3D gel deposition show higher fracture strength than conventionally milled counterparts,” J Mech Behav Biomed Mater, vol. 135, Nov. 2022, doi: 10.1016/j.jmbbm.2022.105456.
J. Li, W. Craeghs, C. Jing, S. Gong, and F. Shan, “Microstructure and physical performance of laser-induction nanocrystals modified high-entropy alloy composites on titanium alloy,” Mater Des, vol. 117, pp. 363–370, Mar. 2017, doi: 10.1016/J.MATDES.2016.12.007.
M. Revilla‐León, N. Al‐Haj Husain, A. B. Barmak, J. Pérez‐López, A. J. Raigrodski, and M. Özcan, “Chemical Composition and Flexural Strength Discrepancies Between Milled and Lithography‐Based Additively Manufactured Zirconia,” Journal of Prosthodontics, vol. 31, no. 9, pp. 778–783, Dec. 2022, doi: 10.1111/jopr.13482.
T. Yu, Z. Zhang, Q. Liu, R. Kuliiev, N. Orlovskaya, and D. Wu, “Extrusion-based additive manufacturing of yttria-partially-stabilized zirconia ceramics,” Ceram Int, vol. 46, no. 4, pp. 5020–5027, Mar. 2020, doi: 10.1016/J.CERAMINT.2019.10.245.
H. Nakai et al., “Additively Manufactured Zirconia for Dental Applications,” Materials, vol. 14, no. 13, p. 3694, Jul. 2021, doi: 10.3390/ma14133694.
T. J. Lucas, N. C. Lawson, G. M. Janowski, and J. O. Burgess, “Phase transformation of dental zirconia following artificial aging,” J Biomed Mater Res B Appl Biomater, vol. 103, no. 7, pp. 1519–1523, Oct. 2015, doi: 10.1002/JBM.B.33334.
F. Zhang et al., “3D printed zirconia dental implants with integrated directional surface pores combine mechanical strength with favorable osteoblast response,” Acta Biomater, vol. 150, pp. 427–441, Sep. 2022, doi: 10.1016/J.ACTBIO.2022.07.030.
C. Marsico, M. Øilo, J. Kutsch, M. Kauf, and D. Arola, “Vat polymerization-printed partially stabilized zirconia: Mechanical properties, reliability and structural defects,” Addit Manuf, vol. 36, p. 101450, Dec. 2020, doi: 10.1016/J.ADDMA.2020.101450.
C. Branco et al., “Tribological performance of the pair human teeth vs 3D printed zirconia: An in vitro chewing simulation study,” J Mech Behav Biomed Mater, vol. 110, p. 103900, Oct. 2020, doi: 10.1016/J.JMBBM.2020.103900.
J. M. Moon et al., “A Comparative Study of Additive and Subtractive Manufacturing Techniques for a Zirconia Dental Product: An Analysis of the Manufacturing Accuracy and the Bond Strength of Porcelain to Zirconia,” Materials, vol. 15, no. 15, Aug. 2022, doi: 10.3390/MA15155398.
Y. Lu et al., “Schwickerath adhesion tests of porcelain veneer and stereolithographic additive-manufactured zirconia,” Ceram Int, vol. 46, no. 10, pp. 16572–16577, Jul. 2020, doi: 10.1016/j.ceramint.2020.03.228.
M. Braian, R. Jimbo, and A. Wennerberg, “Production tolerance of additive manufactured polymeric objects for clinical applications,” Dental Materials, vol. 32, no. 7, pp. 853–861, Jul. 2016, doi: 10.1016/J.DENTAL.2016.03.020.
D. Chopra, A. Jayasree, T. Guo, K. Gulati, and S. Ivanovski, “Advancing dental implants: Bioactive and therapeutic modifications of zirconia,” Bioact Mater, vol. 13, pp. 161–178, Jul. 2022, doi: 10.1016/J.BIOACTMAT.2021.10.010.
B. Camargo et al., “3D printing and milling accuracy influence full-contour zirconia crown adaptation,” Dental Materials, vol. 38, no. 12, pp. 1963–1976, Dec. 2022, doi: 10.1016/j.dental.2022.11.002.
M. Revilla-León, M. M. Methani, D. Morton, and A. Zandinejad, “Internal and marginal discrepancies associated with stereolithography (SLA) additively manufactured zirconia crowns,” J Prosthet Dent, vol. 124, no. 6, pp. 730–737, Dec. 2020, doi: 10.1016/j.prosdent.2019.09.018.
H. Li, L. Song, J. Sun, J. Ma, and Z. Shen, “Dental ceramic prostheses by stereolithography-based additive manufacturing: potentials and challenges,” Adv Appl Ceram, vol. 118, no. 1–2, pp. 30–36, Feb. 2019, doi: 10.1080/17436753.2018.1447834.
Y. K. Kim, J. S. Han, and H. I. Yoon, “Evaluation of intaglio surface trueness, wear, and fracture resistance of zirconia crown under simulated mastication: a comparative analysis between subtractive and additive manufacturing,” J Adv Prosthodont, vol. 14, no. 2, pp. 122–132, 2022, doi: 10.4047/jap.2022.14.2.122.
J. Lüchtenborg et al., “Accuracy of additively manufactured zirconia four-unit fixed dental prostheses fabricated by stereolithography, digital light processing and material jetting compared with subtractive manufacturing,” Dent Mater, vol. 38, no. 9, pp. 1459–1469, Sep. 2022, doi: 10.1016/j.dental.2022.06.026.
D. Zhang, E. Peng, R. Borayek, and J. Ding, “Controllable ceramic green-body configuration for complex ceramic architectures with fine features,” Adv Funct Mater, vol. 29, no. 12, p. 1807082, Mar. 2019, doi: 10.1002/adfm.201807082.
H. J. Hsu, S. Y. Lee, S. L. Chang, C. H. Lo, and Y. M. Lin, “Shrinkage prediction using finite element analysis and experimental validation using three-dimension slurry printing system,” Int J Adv Manuf Tech, vol. 91, no. 1–4, pp. 1289–1296, Jul. 2017, doi: 10.1007/s00170-016-9842-3.
C. H. Chang, C. Y. Lin, C. H. Chang, F. H. Liu, Y. T. Huang, and Y. S. Liao, “Enhanced biomedical applicability of ZrO2-SiO2 ceramic composites in 3D printed bone scaffolds,” Sci Rep, vol. 12, no. 1, p. 6845, Dec. 2022, doi: 10.1038/s41598-022-10731-w.
G. R. Ramirez-San Juan, P. W. Oakes, and M. L. Gardel, “Contact guidance requires spatial control of leading-edge protrusion,” Mol Biol Cell, vol. 28, no. 8, pp. 1043–1053, Apr. 2017, doi: 10.1091/mbc.e16-11-0769.
K. Sakthiabirami et al., “Hybrid porous zirconia scaffolds fabricated using additive manufacturing for bone tissue engineering applications,” Mat Sci Eng C-Mater, vol. 123, p. 111950, Apr. 2021, doi: 10.1016/j.msec.2021.111950.
Q. Wang, Z. Ma, Y. Wang, L. Zhong, and W. Xie, “Fabrication and characterization of 3D printed biocomposite scaffolds based on PCL and zirconia nanoparticles,” Bio-Des Manuf, vol. 4, no. 1, pp. 60–71, Mar. 2021, doi: 10.1007/s42242-020-00095-3.
M. W. Sa, B. N. B. Nguyen, R. A. Moriarty, T. Kamalitdinov, J. P. Fisher, and J. Y. Kim, “Fabrication and evaluation of 3D printed BCP scaffolds reinforced with ZrO2 for bone tissue applications,” Biotechnol Bioeng, vol. 115, no. 4, pp. 989–999, Apr. 2018, doi: 10.1002/bit.26514.
H. Zhang et al., “Fabrication and properties of 3D printed zirconia scaffold coated with calcium silicate/hydroxyapatite,” Ceram Int, vol. 47, no. 19, pp. 27032–27041, Oct. 2021, doi: 10.1016/j.ceramint.2021.06.116.
W. He et al., “Novel bone repairing scaffold consisting of bone morphogenetic Protein-2 and human Beta Defensin-3,” J Biol Eng, vol. 15, no. 1, p. 5, Dec. 2021, doi: 10.1186/s13036-021-00258-5.
Y. Zhu et al., “3D printed zirconia ceramic hip joint with precise structure and broad-spectrum antibacterial properties,” Int J Nanomedicine, vol. 14, pp. 5977–5987, 2019, doi: 10.2147/ijn.s202457.
Petre et al., “A novel experimental approach to evaluate guided bone regeneration (GBR) in the rat femur using a 3D-printed CAD/CAM zirconia space-maintaining barrier,” J Adv Res, vol. 28, pp. 221–229, Feb. 2021, doi: 10.1016/j.jare.2020.07.012.
Ioannidis, D. Bomze, C. H. F. Hämmerle, J. Hüsler, O. Birrer, and S. Mühlemann, “Load-bearing capacity of CAD/CAM 3D-printed zirconia, CAD/CAM milled zirconia, and heat-pressed lithium disilicate ultra-thin occlusal veneers on molars,” Dent Mater, vol. 36, no. 4, pp. E109–E116, Apr. 2020, doi: 10.1016/j.dental.2020.01.016.
J. Abduo BDS, M. Grace Ho DDS Alannah Centorame DDS Simran Chohan DDS Clara Park DDS Ramiz Abdouni DDS Phillip Le DDS Christopher Ngo DDS, and C. Jaafar Abduo, “Marginal accuracy of monolithic and veneered zirconia crowns fabricated by conventional and digital workflows,” Wiley Online LibraryJ Abduo, G Ho, A Centorame, S Chohan, C Park, R Abdouni, P Le, C NgoJournal of Prosthodontics, 2023•Wiley Online Library, vol. 32, no. 8, pp. 706–713, Oct. 2022, doi: 10.1111/jopr.13618.
Bennett et al., “Optimization of 3D printing technology for fabrication of dental crown prototype using plastic powder and zirconia materials,” Materials, vol. 15, no. 23, p. 8618, Dec. 2022, doi: 10.3390/ma15238618.
S. Roehling et al., “In vitro biofilm formation on titanium and zirconia implant surfaces,” J Periodontol, vol. 88, no. 3, pp. 298–307, Mar. 2017, doi: 10.1902/jop.2016.160245.
Mihatovic, V. Golubovic, J. Becker, and F. Schwarz, “Bone tissue response to experimental zirconia implants,” Clin Oral Investig, vol. 21, no. 2, pp. 523–532, Mar. 2017, doi: 10.1007/s00784-016-1904-2.
Westover, “Three-dimensional custom-root replicate tooth dental implants,” Oral Maxillofac Surg Clin North Am, vol. 31, no. 3, pp. 489–496, Aug. 2019, doi: 10.1016/j.coms.2019.03.010.
M. Pessanha-Andrade, M. B. Sordi, B. Henriques, F. S. Silva, W. Teughels, and J. C. M. Souza, “Custom-made root-analogue zirconia implants: A scoping review on mechanical and biological benefits,” J Biomed Mater Res B Appl Biomater, vol. 106, no. 8, pp. 2888–2900, Nov. 2018, doi: 10.1002/JBM.B.34147.
M. Hultin, K. G. Svensson, and M. Trulsson, “Clinical advantages of computer-guided implant placement: A systematic review,” Clin Oral Implants Res, vol. 23, no. SUPPL.6, pp. 124–135, Oct. 2012, doi: 10.1111/J.1600-0501.2012.02545.X.
X. Tan, Y. Zhao, Y. Lu, P. Yu, Z. Mei, and H. Yu, “Physical and biological implications of accelerated aging on stereolithographic additive-manufactured zirconia for dental implant abutment,” J Prosthodont Res, vol. 66, no. 4, pp. 600–609, 2022, doi: 10.2186/jpr.jpr_d_21_00240.
G. Moura et al., “Laser printing of silver-based micro-wires in ZrO2 substrate for smart implant applications,” Opt Laser Technol, vol. 131, p. 106416, Nov. 2020, doi: 10.1016/j.optlastec.2020.106416.
Roccia et al., “World Oral and Maxillofacial Trauma (WORMAT) project: a multicenter prospective analysis of epidemiology and patterns of maxillofacial trauma around the world,” J Stomatol Oral Maxillofac Surg, vol. 123, no. 6, pp. E849–E857, Nov. 2022, doi: 10.1016/j.jormas.2022.05.004.
H. N. Chia and B. M. Wu, “Recent advances in 3D printing of biomaterials,” J Biol Eng, vol. 9, no. 1, p. 4, Mar. 2015, doi: 10.1186/s13036-015-0001-4.
M. Shen et al., “Mechanical properties of 3D printed ceramic cellular materials with triply periodic minimal surface architectures,” J Eur Ceram Soc, vol. 41, no. 2, pp. 1481–1489, Feb. 2021, doi: 10.1016/j.jeurceramsoc.2020.09.062.
M. Rodriguez-Salvador and L. Ruiz-Cantu, “Revealing emerging science and technology research for dentistry applications of 3D bioprinting,” Int J Bioprint, vol. 5, no. 1, p. 170, 2019, doi: 10.18063/ijb.v5i1.170.
Z. He et al., “Fabrication of a zirconia/calcium silicate composite scaffold based on digital light processing,” Ceram Int, vol. 48, no. 18, pp. 25923–25932, Sep. 2022, doi: 10.1016/j.ceramint.2022.05.269.
Shadianlou, A. Foorginejad, and Y. Yaghoubinezhad, “Hydrothermal synthesis of zirconia-based nanocomposite powder reinforced by graphene and its application for bone scaffold with 3D printing,” Adv Powder Technol, vol. 33, no. 2, p. 103406, Feb. 2022, doi: 10.1016/j.apt.2021.103406.
L. Goyos-Ball et al., “Mechanical and biological evaluation of 3D printed 10CeTZP-Al2O3 structures,” J Eur Ceram Soc, vol. 37, no. 9, pp. 3151–3158, Aug. 2017, doi: 10.1016/j.jeurceramsoc.2017.03.012.
M. Abdullah, T. N. A. T. Rahim, W. N. F. W. Hamad, D. Mohamad, H. M. Akil, and Z. A. Rajion, “Mechanical and cytotoxicity properties of hybrid ceramics filled polyamide 12 filament feedstock for craniofacial bone reconstruction via fused deposition modelling,” Dent Mater, vol. 34, no. 11, pp. e309–e316, Nov. 2018, doi: 10.1016/j.dental.2018.09.006.
Deng, L. Liu, Z. Li, and J. Liu, “3D printed Ti6Al4V bone scaffolds with different pore structure effects on bone ingrowth,” J Biol Eng, vol. 15, no. 1, p. 4, Dec. 2021, doi: 10.1186/s13036-021-00255-8.
W. LaBarge, A. Morales, D. Pretorius, A. M. Kahn-Krell, R. Kannappan, and J. Zhang, “Scaffold-free bioprinter utilizing layer-by-layer printing of cellular spheroids,” Micromachines (Basel), vol. 10, no. 9, p. 570, Sep. 2019, doi: 10.3390/mi10090570.
L. Hingsammer, M. Grillenberger, M. Schagerl, M. Michael, and H. Stefan, “Biomechanical testing of zirconium dioxide osteosynthesis system for Le Fort I advancement osteotomy fixation,” J Mech Behav Biomed, vol. 77, pp. 34–39, Jan. 2018, doi: 10.1016/j.jmbbm.2017.09.004.
Q. Lian, W. Sui, X. Wu, F. Yang, and S. Yang, “Additive manufacturing of ZrO2 ceramic dental bridges by stereolithography,” Rapid Prototyp J, vol. 24, no. 1, pp. 114–119, 2018, doi: 10.1108/rpj-09-2016-0144.
S. Yan, Y. Huang, D. Zhao, F. Niu, G. Ma, and D. Wu, “3D printing of nano-scale Al2O3-ZrO2 eutectic ceramic: Principle analysis and process optimization of pores,” Addit Manuf, vol. 28, pp. 120–126, Aug. 2019, doi: 10.1016/J.ADDMA.2019.04.024.
D. An et al., “A strategy for defects healing in 3D printed ceramic compact via cold isostatic pressing: sintering kinetic window and microstructure evolution,” J Eur Ceram Soc, vol. 102, no. 5, pp. 2263–2271, May 2019, doi: 10.1111/jace.16269.
S. J. Huang, C. S. Ye, H. P. Zhao, and Z. T. Fan, “Parameters optimization of binder jetting process using modified silicate as a binder,” Materials and Manufacturing Processes, vol. 35, no. 2, pp. 214–220, Jan. 2020, doi: 10.1080/10426914.2019.1675890.
Sun, J. Binner, and J. Bai, “3D printing of zirconia via digital light processing: optimization of slurry and debinding process,” J Eur Ceram Soc, vol. 40, no. 15, pp. 5837–5844, Dec. 2020, doi: 10.1016/j.jeurceramsoc.2020.05.079.
Kim, Y. J. Choi, C. W. Gal, H. Park, S. Y. Yoon, and H. suk Yun, “Effect of dispersants on structural integrity of 3D printed ceramics,” Int J Appl Ceram Technol, vol. 19, no. 2, pp. 968–978, Mar. 2022, doi: 10.1111/ijac.13965.
J. Jang, J. H. Kang, J. G. Fisher, and S. W. Park, “Effect of the volume fraction of zirconia suspensions on the microstructure and physical properties of products produced by additive manufacturing,” Dent Mater, vol. 35, no. 5, pp. e97–e106, May 2019, doi: 10.1016/j.dental.2019.02.001.
J. Sun, J. Binner, and J. Bai, “Effect of surface treatment on the dispersion of nano zirconia particles in non-aqueous suspensions for stereolithography,” J Eur Ceram Soc, vol. 39, no. 4, pp. 1660–1667, Apr. 2019, doi: 10.1016/j.jeurceramsoc.2018.10.024.
X. Song, Y. Chen, T. W. Lee, S. Wu, and L. Cheng, “Ceramic fabrication using Mask-Image-Projection-based Stereolithography integrated with tape-casting,” J Manuf Process, vol. 20, pp. 456–464, Oct. 2015, doi: 10.1016/j.jmapro.2015.06.022.
S. Kriegseis, L. Aretz, M. E. Jennes, F. Schmidt, T. Tonnesen, and K. Schickle, “3D printing of complex ceramic dental implant abutments by using Direct Inkjet Printing,” Mater Lett, vol. 313, p. 131789, Apr. 2022, doi: 10.1016/j.matlet.2022.131789.
L. De Camargo, R. Erbereli, H. Taylor, and C. A. Fortulan, “3Y-TZP DLP Additive Manufacturing: Solvent-free Slurry Development and Characterization,” Materials Research, vol. 24, no. 2, p. e20200457, Apr. 2021, doi: 10.1590/1980-5373-MR-2020-0457.
Z. Wu et al., “Research into the mechanical properties, sintering mechanism and microstructure evolution of Al2O3-ZrO2 composites fabricated by a stereolithography-based 3D printing method,” Mater Chem Phys, vol. 207, pp. 1–10, Mar. 2018, doi: 10.1016/j.matchemphys.2017.12.021.
Zandinejad, M. Revilla-León, M. M. Methani, L. N. Khanlar, and D. Morton, “The fracture resistance of additively manufactured monolithic zirconia vs. Bi-layered alumina toughened zirconia crowns when cemented to zirconia abutments. evaluating the potential of 3d printing of ceramic crowns: An in vitro study,” Dent J (Basel), vol. 9, no. 10, Oct. 2021, doi: 10.3390/DJ9100115.
P. Kohorst et al., “Low-temperature degradation of different zirconia ceramics for dental applications,” Acta Biomater, vol. 8, no. 3, pp. 1213–1220, Mar. 2012, doi: 10.1016/J.ACTBIO.2011.11.016.
T. Zheng, W. Wang, J. Sun, J. Liu, and J. Bai, “Development and evaluation of Al2O3–ZrO2 composite processed by digital light 3D printing,” Ceram Int, vol. 46, no. 7, pp. 8682–8688, May 2020, doi: 10.1016/J.CERAMINT.2019.12.102.
D. S. Nakonieczny et al., “PA-12-Zirconia-Alumina-Cenospheres 3D Printed Composites: Accelerated Ageing and Role of the Sterilisation Process for Physicochemical Properties,” Polymers 2022, Vol. 14, Page 3152, vol. 14, no. 15, p. 3152, Aug. 2022, doi: 10.3390/POLYM14153152.
Hodásová et al., “Polymer infiltrated ceramic networks with biocompatible adhesive and 3D-printed highly porous scaffolds,” Addit Manuf, vol. 39, p. 101850, Mar. 2021, doi: 10.1016/J.ADDMA.2021.101850.
Furong et al., “Fused deposition modeling of Si3N4 ceramics: A cost-effective 3D-printing route for dense and high performance non-oxide ceramic materials,” J Eur Ceram Soc, vol. 42, no. 15, pp. 7369–7376, Dec. 2022, doi: 10.1016/J.JEURCERAMSOC.2022.08.041.
J. ; Sun et al., “3D printing of layered ceramic/carbon fiber composite with improved toughness,” ElsevierJ Sun, S Yu, J Wade-Zhu, X Chen, J Binner, J BaiAdditive Manufacturing, 2022•Elsevier, doi: 10.1016/j.addma.2021.102543.
Desponds et al., “3D Printing and Pyrolysis of Optical ZrO2 Nanostructures by Two‐Photon Lithography: Reduced Shrinkage and Crystallization Mediated by Nanoparticles Seeds,” Wiley Online LibraryA Desponds, A Banyasz, D Chateau, A Tellal, A Venier, S Meille, G Montagnac, J ChevalierSmall, 2021•Wiley Online Library, vol. 17, no. 42, Oct. 2021, doi: 10.1002/smll.202102486.
Y. Su, J. C. Wang, D. S. Chen, C. C. Chuang, and C. K. Lin, “Additive manufacturing of dental prosthesis using pristine and recycled zirconia solvent-based slurry stereolithography,” Ceram Int, vol. 46, no. 18, pp. 28701–28709, Dec. 2020, doi: 10.1016/J.CERAMINT.2020.08.030.
S. Miura, A. Shinya, Y. Ishida, and M. Fujisawa, “Mechanical and surface properties of additive manufactured zirconia under the different building directions,” J Prosthodont Res, vol. 67, no. 3, pp. 410–417, 2023, doi: 10.2186/JPR.JPR_D_22_00166.
L. Conti, D. Bienenstein, M. Borlaf, and T. Graule, “Effects of the Layer Height and Exposure Energy on the Lateral Resolution of Zirconia Parts Printed by Lithography-Based Additive Manufacturing,” Materials 2020, Vol. 13, Page 1317, vol. 13, no. 6, p. 1317, Mar. 2020, doi: 10.3390/MA13061317.
W. Stansbury and M. J. Idacavage, “3D printing with polymers: Challenges among expanding options and opportunities,” Dental Materials, vol. 32, no. 1, pp. 54–64, Jan. 2016, doi: 10.1016/J.DENTAL.2015.09.018.
Zhang, J. Zhou, J. Cai, and G. Duan, “3D Printing of Zirconia Ceramic Slurry: Effect of Overlapping Rate on Surface Finish and Mechanical Properties,” Journal of Ceramic Science and Technology, vol. 12, no. 2, pp. 71–80, 2021, doi: 10.4416/JCST2020-00020.
Buj-Corral, D. Vidal, A. Tejo-Otero, J. A. Padilla, E. Xuriguera, and F. Fenollosa-Artés, “Characterization of 3D Printed Yttria-Stabilized Zirconia Parts for Use in Prostheses,” Nanomaterials 2021, Vol. 11, Page 2942, vol. 11, no. 11, p. 2942, Nov. 2021, doi: 10.3390/NANO11112942.
Baltazar, M. F. Rodrigues Pais Alves, M. A. Martins, P. M. C. Torres, C. Santos, and S. Olhero, “Flexural strength of 3Y-TZP bioceramics obtained by direct write assembly as function of residual connected-porosity,” J Mech Behav Biomed Mater, vol. 126, p. 105035, Feb. 2022, doi: 10.1016/J.JMBBM.2021.105035.
W. Li et al., “High-performance integrated manufacturing of a 3Y-TZP ceramic crown through viscoelastic paste-based vat photopolymerization with a conformal contactless,” ElsevierW Li, M Liu, W Liu, H Zhou, M Li, Y Chen, Z XingAdditive Manufacturing, 2022•Elsevier, Accessed: Mar. 09, 2025. [Online]. Available: https://www.sciencedirect.com/science/article/pii/S2214860422005322
Y. C. Cheng, D. H. Lin, C. P. Jiang, and Y. M. Lin, “Dental implant customization using numerical optimization design and 3-dimensional printing fabrication of zirconia ceramic,” Int J Numer Method Biomed Eng, vol. 33, no. 5, p. e2820, May 2017, doi: 10.1002/CNM.2820.
M. Ahlhelm et al., “Innovative and novel manufacturing methods of ceramics and metal-ceramic composites for biomedical applications,” J Eur Ceram Soc, vol. 36, no. 12, pp. 2883–2888, Sep. 2016, doi: 10.1016/J.JEURCERAMSOC.2015.12.020.
A. Alshaikh et al., “3D-Printed Nanocomposite Denture-Base Resins: Effect of ZrO2 Nanoparticles on the Mechanical and Surface Properties In Vitro,” Nanomaterials 2022, Vol. 12, Page 2451, vol. 12, no. 14, p. 2451, Jul. 2022, doi: 10.3390/NANO12142451.
Hadian, M. Fricke, A. Liersch, F. C.-A. Manufacturing, and undefined 2022, “Material extrusion additive manufacturing of zirconia parts using powder injection molding feedstock compositions,” ElsevierA Hadian, M Fricke, A Liersch, F ClemensAdditive Manufacturing, 2022•Elsevier, Accessed: Mar. 09, 2025. [Online]. Available: https://www.sciencedirect.com/science/article/pii/S2214860422003591
Didilis, D. Marani, U. Bihlet, … A. H.-A., and undefined 2022, “Freeform injection molding of functional ceramics by hybrid additive manufacturing,” ElsevierK Didilis, D Marani, UD Bihlet, AB Haugen, V EspositoAdditive Manufacturing, 2022•Elsevier, Accessed: Mar. 09, 2025. [Online]. Available: https://www.sciencedirect.com/science/article/pii/S2214860422005863
H. Li, L. Song, J. Sun, J. Ma, and Z. Shen, “Asynchronous densification of zirconia ceramics formed by stereolithographic additive manufacturing,” J Eur Ceram Soc, vol. 41, no. 8, pp. 4666–4670, Jul. 2021, doi: 10.1016/J.JEURCERAMSOC.2021.02.052.
T. Di Cho Too et al., “Influence of sintering conditions on translucency, biaxial flexural strength, microstructure, and low-temperature degradation of highly translucent dental zirconia,” Dent Mater J, vol. 40, no. 6, pp. 1320–1328, Nov. 2021, doi: 10.4012/DMJ.2020-448.
M. Lee, S. L. Sing, and W. Y. Yeong, “Bioprinting of Multimaterials with Computer-aided Design/Computer-aided Manufacturing,” International Journal of Bioprinting 2020, 6(1), 245, vol. 6, no. 1, p. 245, Jan. 2020, doi: 10.18063/IJB.V6I1.245.
Scattarelli, P. Smaniotto, S. Leuci, G. Cervino, and M. Gisotti, “The Digital Integrated Workflow in the Aesthetic Management of the Smile: A Case Report,” Prosthesis 2020, Vol. 2, Pages 196-210, vol. 2, no. 3, pp. 196–210, Aug. 2020, doi: 10.3390/PROSTHESIS2030017.