Impact of post printing cleaning methods on geometry, transmission, roughness parameters, and flexural strength of 3D-printed zirconia.
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[1] S. Rues,et al. Osteoblast behaviour on zirconia fabricated by additive and subtractive technology , 2022, Ceramics International.
[2] S. Rues,et al. Strength and reliability of zirconia fabricated by additive manufacturing technology. , 2022, Dental materials : official publication of the Academy of Dental Materials.
[3] S. Spintzyk,et al. Rinsing postprocessing procedure of a 3D-printed orthodontic appliance material: Impact of alternative post-rinsing solutions on the roughness, flexural strength and cytotoxicity. , 2022, Dental materials : official publication of the Academy of Dental Materials.
[4] Jong-Eun Kim,et al. Effects of the Washing Time and Washing Solution on the Biocompatibility and Mechanical Properties of 3D Printed Dental Resin Materials , 2021, Polymers.
[5] F. Mangano,et al. Trueness and precision of 3D-printed versus milled monolithic zirconia crowns: an in vitro study. , 2021, Journal of dentistry.
[6] A. Tahmaseb,et al. Additive Manufacturing of Zirconia Ceramic and Its Application in Clinical Dentistry: A Review , 2021, Dentistry journal.
[7] J. Vleugels,et al. Additively Manufactured Zirconia for Dental Applications , 2021, Materials.
[8] H. Kondo,et al. Applications of three-dimensional printers in prosthetic dentistry. , 2021, Journal of oral science.
[9] R. Bermejo,et al. Effect of binder system on the thermophysical properties of 3D‐printed zirconia ceramics , 2021, International journal of applied ceramic technology.
[10] D. Edelhoff,et al. 3D Printing in Digital Prosthetic Dentistry: An Overview of Recent Developments in Additive Manufacturing , 2021, Journal of clinical medicine.
[11] A. Koenig,et al. The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia , 2021, Materials.
[12] D. Edelhoff,et al. Influence of cleaning methods after 3D printing on two-body wear and fracture load of resin-based temporary crown and bridge material , 2021, Clinical Oral Investigations.
[13] Vinayak R. Krishnamurthy,et al. 3D printing parameters, supporting structures, slicing, and post-processing procedures of vat-polymerization additive manufacturing technologies: A narrative review. , 2021, Journal of dentistry.
[14] D. Edelhoff,et al. Temporary 3D printed fixed dental prosthesis materials: Impact of post printing cleaning methods on degree of conversion as well as surface and mechanical properties. , 2021, The International journal of prosthodontics.
[15] A. Kienle,et al. Evaluation of translucency, Marten's hardness, biaxial flexural strength and fracture toughness of 3Y-TZP, 4Y-TZP and 5Y-TZP materials. , 2020, Dental materials : official publication of the Academy of Dental Materials.
[16] D. Edelhoff,et al. Comparison between novel strength-gradient and color-gradient multilayered zirconia using conventional and high-speed sintering. , 2020, Journal of the mechanical behavior of biomedical materials.
[17] J. Chevalier,et al. X-ray tomography of additive-manufactured zirconia: Processing defects – Strength relations , 2020 .
[18] B. Stawarczyk,et al. Impact of hydrothermal aging on the light transmittance and flexural strength of colored yttria-stabilized zirconia materials of different formulations. , 2020, The Journal of prosthetic dentistry.
[19] J. Hüsler,et al. Load-bearing capacity of CAD/CAM 3D-printed zirconia, CAD/CAM milled zirconia, and heat-pressed lithium disilicate ultra-thin occlusal veneers on molars. , 2020, Dental materials : official publication of the Academy of Dental Materials.
[20] M. Revilla‐León,et al. Internal and marginal discrepancies associated with stereolithography (SLA) additively manufactured zirconia crowns. , 2020, The Journal of prosthetic dentistry.
[21] Wein-I Wang,et al. Trueness analysis of zirconia crowns fabricated with 3‐dimensional printing , 2019, The Journal of prosthetic dentistry.
[22] L. Valandro,et al. Fatigue strength of yttria-stabilized zirconia polycrystals: Effects of grinding, polishing, glazing, and heat treatment. , 2017, Journal of the mechanical behavior of biomedical materials.
[23] K. Matthias Weber,et al. The Role of Foresight in Shaping the Next Production Revolution , 2017 .
[24] L. An,et al. Comparative study of flexural strength test methods on CAD/CAM Y-TZP dental ceramics , 2015, Regenerative biomaterials.
[25] Jean-Pierre Kruth,et al. Additive manufacturing of ceramics: A review , 2014 .
[26] N D Ruse,et al. Resin-composite Blocks for Dental CAD/CAM Applications , 2014, Journal of dental research.
[27] Wolfgang Wachter,et al. Light curing strategies for lithography-based additive manufacturing of customized ceramics , 2014 .
[28] John W. Halloran,et al. Influence of Residual Monomer on Cracking in Ceramics Fabricated by Stereolithography , 2011 .
[29] R. Giordano. Materials for chairside CAD/CAM-produced restorations. , 2006, Journal of the American Dental Association.
[30] M Quirynen,et al. The influence of surface roughness and surface-free energy on supra- and subgingival plaque formation in man. A review of the literature. , 2005 .
[31] Hidekazu Takahashi,et al. Effect of test method on flexural strength of recent dental ceramics. , 2004, Dental materials journal.
[32] A. Harrison,et al. Strains and tensile stress distribution in loaded disc-shaped ceramic specimens. An FEA study. , 1998, Journal of oral rehabilitation.
[33] K. Zeng,et al. Flexure tests on dental ceramics. , 1996, The International journal of prosthodontics.
[34] Marta Revilla-León,et al. Additive manufacturing technologies for processing zirconia in dental applications. , 2020, International journal of computerized dentistry.
[35] Marco Ferrari,et al. Color related to ceramic and zirconia restorations: a review. , 2011, Dental materials : official publication of the Academy of Dental Materials.