Peculiarities of Yttria- and Ceria-Stabilized Zirconia Ceramics Fabricated via Electroconsolidation
Abstract
1. Introduction
2. Materials and Methods
2.1. Initial Powders
2.2. Sintering Method
2.3. Material Characterization Methods
- Accelerating voltage 20 kV;
- Vacuum high, secondary electron (SE) detector.
3. Results and Discussion
3.1. Phase Composition
3.1.1. Composition and Sinterability of Initial Powders
3.1.2. Microstructure of Sintered Samples
3.1.3. Phase Composition of Sintered Samples
3.2. Densification Process
- Initial stage from the start to ca. 300 s—activation;
- Main stage between approximately 300 s and 700 s—compaction and densification;
- Intermediate stage between 700 s and 1200 s—completion;
- Final stage that lasted from 1200 s up to 4000 s—structure stabilization.
3.3. Hardness, Plasticity and Toughness
3.4. The Chain of Properties
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| CSZ | Ceria-stabilized zirconia |
| FE-SEM | Field Emission Scanning Electron Microscope |
| PVC | Polyvinyl Chloride |
| SEM | Scanning Electron Microscopy |
| SLA | Stereolithography |
| SPS | Spark Plasma Sintering |
| TEM | Transmission Electron Microscopy |
| YSZ | Yttria-stabilized zirconia |
References
- Shakirzyanov, R.; Maznykh, S.; Garanin, Y.; Kaliyekperov, M. Compositional Effects on Mechanical Performance of Zirconia–Magnesia–Alumina Ceramics. Ceramics 2025, 8, 114. [Google Scholar] [CrossRef] [Scilit]
- Fujii, S.; Shimazaki, K.; Kuwabara, A. Empirical interatomic potentials for ZrO2 and YSZ polymorphs: Application to a tetragonal ZrO2 grain boundary. Acta Mater. 2024, 262, 119460. [Google Scholar] [CrossRef] [Scilit]
- Yao, X.; Antunes, M.M.; Buzanich, A.G.; Cabanelas, P.; Valente, A.A.; Pinna, N.; Russo, P.A. Formation, Phase Transition, Surface, and Catalytic Properties of Cubic ZrO2 Nanocrystals. Chem. Mater. 2025, 37, 8568–8580. [Google Scholar] [CrossRef] [Scilit]
- Suchorab, K.; Brykała, M.; Gawęda, M.; Zieliński, M.; Diduszko, R.; Kaszyca, K.; Chmurzyński, W.; Rzempołuch, J.; Kucia, Z.; Jeleń, P.; et al. Structural investigation of sintered zirconia ceramics for nuclear applications—Effects of Ce/Nd dopants and synthesis methods. J. Mol. Struct. 2026, 1349, 143911. [Google Scholar] [CrossRef] [Scilit]
- Burger, W.; Kiefer, G. Alumina, Zirconia and Their Composite Ceramics with Properties Tailored for Medical Applications. J. Compos. Sci. 2021, 5, 306. [Google Scholar] [CrossRef] [Scilit]
- Khajavi, P.; Xu, Y.; Frandsen, H.L.; Chevalier, J.; Gremillard, L.; Kiebach, R.; Hendriksen, P.V. Tetragonal phase stability maps of ceria-yttria co-doped zirconia: From powders to sintered ceramics. Ceram. Int. 2020, 46, 9396–9405. [Google Scholar] [CrossRef] [Scilit]
- Gali, S.; Arjun, A.; Gururaja, S. Impact of ceria-yttria pigmentation on the mechanical performance and esthetics of zirconia dental restorations. Dent. Mater. 2026, 42, 145–156. [Google Scholar] [CrossRef] [Scilit]
- Fan, J.; Yao, S.; Liu, J.; Zhao, K.; An, L.; Liu, D. Effect of dynamic pressure on grain boundary energy and mechanical performance of high-strength zirconia ceramics fabricated via dynamic sinter forging. J. Eur. Ceram. Soc. 2026, 46, 117898. [Google Scholar] [CrossRef] [Scilit]
- Catramby, M.F.; do Vale, A.L.; dos Santos, H.E.S.; Elias, C.N. Effect of sintering process on microstructure, 4-point flexural strength, and grain size of yttria-stabilized tetragonal zirconia polycrystal for use in monolithic dental restorations. J. Prosthet. Dent. 2021, 125, 824.e1–824.e8. [Google Scholar] [CrossRef] [Scilit]
- Kim, M.-S.; Hong, M.-H.; Min, B.-K.; Kim, Y.-K.; Shin, H.-J.; Kwon, T.-Y. Microstructure, Flexural Strength, and Fracture Toughness Comparison between CAD/CAM Milled and 3D-Printed Zirconia Ceramics. Appl. Sci. 2022, 12, 9088. [Google Scholar] [CrossRef] [Scilit]
- Sun, Z.; Li, X.; Xing, J.; Gan, M.; Ji, Z.; Lyu, Y. Improving the Mechanical Properties and Microstructure of 12 mol% Ceria-Stabilized Tetragonal Zirconia Polycrystal Ceramics with Low-Content Nd2O3. Materials 2024, 17, 5426. [Google Scholar] [CrossRef] [Scilit]
- Wang, Z.; Zeng, Z.; Lu, Z.; Liu, C.; Dai, W.; Hua, N.; Liu, Z.; Wu, H. Influence of Yttrium Oxide Distribution on Microstructure and Properties of Zirconia Based on Alternative Doping Routes. JOM 2025, 77, 8763–8772. [Google Scholar] [CrossRef] [Scilit]
- You, J.; Guo, W.; Li, Y.; Pan, Y.; Cui, T. Phase Evolution and Mechanical Performance of Zirconia Ceramics Synthesized Under High Temperature and High Pressure. Nanomaterials 2025, 15, 1235. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Alves, M.F.R.P.; de Campos, L.Q.B.; Simba, B.G.; da Silva, C.R.M.; Strecker, K.; dos Santos, C. Microstructural Characteristics of 3Y-TZP Ceramics and Their Effects on the Flexural Strength. Ceramics 2022, 5, 798–813. [Google Scholar] [CrossRef] [Scilit]
- Jugan, A.; Marinel, S.; Le Pluart, L.; Marie, T.; Herbinet, R.; Manière, C. Elaboration of Printable Nanopowder Zirconia Suspensions for Vat Photopolymerization. J. Mater. Eng. Perform. 2025, 34, 28824–28833. [Google Scholar] [CrossRef] [Scilit]
- Kocjan, A.; Bhootpur, N.; Iveković, A.; Eriksson, M. Rapid densification of nanocrystalline zirconia: Pressureless versus pressure-assisted spark plasma sintering. Open Ceram. 2024, 19, 100657. [Google Scholar] [CrossRef] [Scilit]
- Denis, Y.; Philippot, G.; Roitero, E.; Goglio, G.; Suchomel, M.R.; Chung, U.-C.; de Beauvoir, T.H.; Reveron, H.; Chevalier, J.; Estournès, C.; et al. Cold sintering of zirconia and yttria-stabilized zirconia from reactive hydroxides precursors. J. Eur. Ceram. Soc. 2025, 45, 117650. [Google Scholar] [CrossRef] [Scilit]
- Dos Santos, L.B.F.; Svitlyk, V.; Richter, S.; Hennig, C.; Müller, K.; Bazarkina, E.F.; Kvashnina, K.O.; Stumpf, T.; Huittinen, N. Exploring Metastable Phases in Cerium-Doped Zirconia: Insights from X-ray Diffraction, Raman, X-ray Absorption, and Luminescence Spectroscopy. Inorg. Chem. 2025, 64, 9670–9683. [Google Scholar] [CrossRef] [Scilit]
- Rucki, M.; Hevorkian, E.; Latosińska, J.N.; Kolodnitskyi, V.; Chalko, L.; Morozow, D.; Samociuk, W.; Matijosius, J.; Masař, M.; Ryba, T. Reproducibility Assessment of Zirconia-Based Ceramics Fabricated out of Nanopowders by Electroconsolidation Method. Appl. Sci. 2025, 15, 4955. [Google Scholar] [CrossRef] [Scilit]
- Sarmah, P.; Pawanr, S.; Gupta, K. Fabrication of Novel Hybrid Al-SiC-ZrO2 Composites via Powder Metallurgy Route and Intelligent Modeling for Their Microhardness. Ceramics 2025, 8, 91. [Google Scholar] [CrossRef] [Scilit]
- Zhu, T.; Guo, W.; Zhang, J.; Sang, S.; Li, Y.; Xie, Z.; Liang, X.; Wang, H.; Han, Y. Synergistic toughening effect of SiC whiskers and particles in ZrO2–Al2O3–SiC ceramics. Ceram. Int. 2023, 49, 36337–36343. [Google Scholar] [CrossRef] [Scilit]
- Oguntuyi, S.D.; Johnson, O.T.; Shongwe, M.B.; Jeje, S.O.; Rominiyi, A.L. The effects of sintering additives on the ceramic matrix composite of ZrO2: Microstructure, densification, and mechanical properties—A review. Adv. Appl. Ceram. Struct. Funct. Bioceram. 2021, 120, 319–335. [Google Scholar] [CrossRef] [Scilit]
- Basu, B.; Vleugels, J.; Van der Biest, O. Toughness tailoring of yttria-doped zirconia ceramics. Mater. Sci. Eng. A 2004, 380, 215–221. [Google Scholar] [CrossRef] [Scilit]
- Jiang, R.; Torresani, E.; Olevsky, E.A. A review of microstructure evolution and performance improvements in emerging sintering processes under controlled energy input. J. Mater. Res. Technol. 2025, 39, 368–391. [Google Scholar] [CrossRef] [Scilit]
- Hevorkian, E.S.; Nerubatskyi, V.P.; Rucki, M.; Kilikevicius, A.; Mamalis, A.G.; Samociuk, W.; Morozow, D. Electroconsolidation Method for Fabrication of Fine-Dispersed High-Density Ceramics. Nanotechnol. Percept 2024, 20, 100–113. [Google Scholar]
- Hevorkian, E.S.; Nerubaskyi, V.P.; Chyshkala, V.O.; Lytovchenko, S.V.; Prokopiv, M.M.; Samociuk, W.; Mechnik, V.A. Technological and innovative features of the electroconsolidation method as a kind of plasma sintering for refractory compounds. J. Superhard Mater. 2024, 46, 364–375. [Google Scholar] [CrossRef] [Scilit]
- Hevorkian, E.; Michalczewski, R.; Rucki, M.; Sofronov, D.; Osuch-Słomka, E.; Nerubatskyi, V.; Krzysiak, Z.; Latosińska, J.N. Effect of the sintering parameters on the structure and mechanical properties of zirconia-based ceramics. Ceram. Int. 2024, 50, 35226–35235. [Google Scholar] [CrossRef] [Scilit]
- Rao, X.; Zhang, F.; Luo, X.; Ding, F. Characterization of hardness, elastic modulus and fracture toughness of RB-SiC ceramics at elevated temperature by Vickers test. Mater. Sci. Eng. A 2019, 744, 426–435. [Google Scholar] [CrossRef] [Scilit]
- Adamovic, D.; Zivic, F. Hardness and Non-Destructive Testing (NDT) of Ceramic Matrix Composites (CMCs). In Encyclopedia of Materials: Composites; Brabazon, D., Ed.; Elsevier: Amsterdam, The Netherlands, 2021; pp. 183–201. [Google Scholar] [CrossRef] [Scilit]
- Quinn, G.D. Fracture Toughness of Ceramics by the Vickers Indentation Crack Length Method: A Critical Review. In Mechanical Properties and Performance of Engineering Ceramics II: Ceramic Engineering and Science Proceedings; Tandon, R., Wereszczak, A., Lara-Curzio, E., Eds.; John Wiley & Sons, Inc.: Hoboken, NJ, USA, 2007; Volume 27, pp. 45–62. [Google Scholar] [CrossRef] [Scilit]
- Chandrasekar, M.; Senthilkumar, K.; Kumar, T.S.M.; Siva, I.; Venkatanarayanan, P.S.; Phuthotham, M.; Rajini, N.; Siengchin, S.; Ishak, M.R. Effect of adding sisal fiber on the sliding wear behavior of the coconut sheath fiber-reinforced composite. In Tribology of Polymer Composites; Rangappa, S.M., Siengchin, S., Parameswaranpillai, I., Friedrich, K., Eds.; Elsevier: Amsterdam, The Netherlands, 2021; pp. 115–125. [Google Scholar] [CrossRef] [Scilit]
- Dye, D.; Stone, H.J.; Reed, R.C. Intergranular and interphase microstresses. Curr. Opin. Solid State Mater. Sci. 2001, 5, 31–37. [Google Scholar] [CrossRef] [Scilit]
- Liu, X.; Song, L. Synchrotron X-ray and neutron diffraction study on the deformation and phase transformation mechanisms in TiAl alloys: A review. Microstructures 2025, 5, 2025093. [Google Scholar] [CrossRef] [Scilit]
- Besley, E. Recent Developments in the Methods and Applications of Electrostatic Theory. Acc. Chem. Res. 2023, 56, 2267–2277. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xu, J.; Zhao, F.; He, S.; Liu, Z.; Xie, Z. Grain coalescence in (Ti0.2Zr0.2Hf0.2Nb0.2Ta0.2)C during spark plasma sintering. J. Am. Ceram. Soc. 2022, 105, 3838–3849. [Google Scholar] [CrossRef] [Scilit]
- Rietveld, H.M. A profile refinement method for nuclear and magnetic structures. J. Appl. Crystallogr. 1969, 2, 65–71. [Google Scholar] [CrossRef] [Scilit]
- Trunec, M.; Stastny, P.; Kastyl, J.; Roupcova, P.; Chlup, Z. 2Y-TZP ceramics with high strength and toughness by optimizing the microstructure. J. Eur. Ceram. Soc. 2024, 44, 3258–3266. [Google Scholar] [CrossRef] [Scilit]
- Tsukamoto, H. Enhancement of transformation toughening of partially stabilized zirconia by some additives. Ceram. Int. 2022, 48, 20675–20689. [Google Scholar] [CrossRef] [Scilit]
- Berendts, S.; Lerch, M. Growth and characterization of low yttria-doped fully cubic stabilized zirconia-based single crystals. J. Cryst. Growth 2013, 371, 28–33. [Google Scholar] [CrossRef] [Scilit]
- Su, X.; Shang, X.; Che, Y.; Li, S.; Song, J.; He, J. In-situ synthesis of zirconium oxycarbide by electroreduction of ZrO2/C in molten salt. Ceram. Int. 2021, 47, 21459–21465. [Google Scholar] [CrossRef] [Scilit]
- Kucheryavaya, A.; Lenčéš, Z.; Šajgalík, P.; Harmuth, H. Zirconium oxycarbides and oxycarbonitrides: A review. Int. J. Appl. Ceram. Technol. 2023, 20, 541–562. [Google Scholar] [CrossRef] [Scilit]
- Tanaka, H.; Maeda, T.; Narikiyo, H.; Morimoto, T. Mechanical properties of partially stabilized zirconia for dental applications. J. Asian Ceram. Soc. 2019, 7, 460–468. [Google Scholar] [CrossRef] [Scilit]
- Tovar-Vargas, D.; Roitero, E.; Anglada, M.; Jiménez-Piqué, E.; Reveron, H. Mechanical properties of ceria-calcia stabilized zirconia ceramics with alumina additions. J. Eur. Ceram. Soc. 2021, 41, 5602–5612. [Google Scholar] [CrossRef] [Scilit]
- Zhang, F.; Van Meerbeek, B.; Vleugels, J. Importance of tetragonal phase in high-translucent partially stabilized zirconia for dental restorations. Dent. Mater. 2020, 36, 491–500. [Google Scholar] [CrossRef] [Scilit]
- Pereira, R.M.; Campos, T.M.B.; Bonfante, E.A.; Thim, G.P. A comparative study of mechanical properties of yttria stabilized zirconia monolithic and bilayer configuration for dental application. J. Mech. Behav. Biomed. Mater. 2023, 148, 106160. [Google Scholar] [CrossRef] [Scilit]
- Batalha, W.C.; Roche, V.; Champion, Y.; Mantel, M.; Verdier, M.; Martin, V.; Kiminami, C.S.; Jorge Junior, A.M. Newly-developed pseudo-high entropy amorphous alloys: Structure/microstructure evolution, mechanical and corrosion properties. J. Non-Cryst. Solids 2023, 613, 122369. [Google Scholar] [CrossRef] [Scilit]
- Duh, J.G.; Dai, H.T.; Chiou, B.S. Sintering, Microstructure, Hardness, and Fracture Toughness Behavior of Y2O3-CeO2-ZrO2. J. Am. Ceram. Soc. 1988, 71, 813–819. [Google Scholar] [CrossRef] [Scilit]
- Li, M.; Tunca, B.; Van Meerbeek, B.; Vleugels, J.; Zhang, F. Tough and damage-tolerant monolithic zirconia ceramics with transformation-induced plasticity by grain-boundary segregation. J. Eur. Ceram. Soc. 2023, 43, 2078–2092. [Google Scholar] [CrossRef] [Scilit]








| Holding Time | Phase | Symbol | Space Group | wt% | Lattice Parameters | d |
|---|---|---|---|---|---|---|
| th = 3 min | Zirconia–yttria | ((ZrO2)0.89(Y2O3)0.11)0.901 | P42/nmc (no. 137) | 89.00 | a = 3.6297 c = 5.1394 | 1.6576 |
| Zirconium carbide | ZrC | Fm-3m (no. 225) | 3.5 | a = 4.672 | 1.3603 | |
| Moissanite-3C | SiC | F-43m (no. 216) | 3.3 | a = 4.348 | 1.7676 | |
| Graphite | C | P63/mmc (no. 194) | 4.2 | a = 2.464, c =6.711 | 3.2555 | |
| th = 10 min | Zirconia (monoclinic) | m-ZrO2 | P21/c (no. 14) | 11.7 | a = 5.1463; b = 5.2135, c = 5.311 β = 99.2° | 2.5703 |
| Moissanite-3C | SiC | F-43m (no. 216) | 4.3 | a = 4.35845 | 2.0287 | |
| Graphite | C | P63/mmc (no. 194) | 67.5 | a = 2.4617, c = 6.7106 | 2.4492 | |
| Zirconium carbide | ZrC | Fm-3m (no. 225) | 16.5 | a = 4.6828 | 2.5225 |
| Sample | Phase | Crystal Structure | Lattice Parameters, Å | Phase Fraction, wt% | Rwp/Rp, % | χ2 |
|---|---|---|---|---|---|---|
| YSZ (3 wt% Y2O3) | t-ZrO2 | Tetragonal (P42/nmc) | a ≈ 3.60; c ≈ 5.18 | ≈95 | 7.8/6.1 | 1.3 |
| m-ZrO2 | Monoclinic (P21/c) | — | ≈5 | |||
| CSZ (5 wt% CeO2) | t′-ZrO2 | Pseudo-cubic tetragonal | a ≈ 5.15 | ≈96 | 8.2/6.4 | 1.4 |
| m-ZrO2 | Monoclinic (P21/c) | — | ≈4 | |||
| CSZ + 10 wt% SiC | t′-ZrO2 | Pseudo-cubic tetragonal | a ≈ 5.15 | dominant | 8.5/6.8 | 1.5 |
| ZrC | Cubic (Fm-3m) | a ≈ 4.67–4.68 | minor | |||
| SiC | Cubic (F-43m) | a ≈ 4.35 | minor | |||
| C (graphite) | Hexagonal (P63/mmc) | a ≈ 2.46; c ≈ 6.71 | minor |
| Composition | Tsint, °C | P, MPa | th, Min | Starting Compaction Temperature Tc1, °C | Final Compaction Temperature Tc2, °C | ρ/ρth |
|---|---|---|---|---|---|---|
| ZrO2−5 wt% CeO2 | 1300 | 45 | 3 | 750 | 1180 | 0.940 |
| ZrO2−5 wt% CeO2 | 1400 | 45 | 3 | 890 | 1250 | 0.970 |
| ZrO2−5 wt% CeO2–10 wt% SiC | 1400 | 45 | 10 | 900 | 1250 | 0.973 |
| Composition | ZrO2–5 wt% Y2O3 | ZrO2–5 wt% CeO2 | ZrO2–5 wt% CeO2–10 wt% SiC |
|---|---|---|---|
| H/E | ~0.070 | ~0.071 | ~0.076 |
| H3/E2 | comparable | comparable | higher |
| Relative density, ρ/ρth | 0.96–0.97 | ~0.97 | ~0.97 |
| Dominant zirconia phase | t-ZrO2 | t’-ZrO2 | t’-ZrO2 |
| Residual monoclinic m-ZrO2, wt% | <5 | <5 | <5 |
| Secondary phases | – | – | ZrC + SiC + C |
| Average grain size | submicron | submicron | submicron |
| Hardness, GPa | 14.2 ± 0.7 | 14.6 ± 0.5 | 16.8 ± 0.8 |
| Toughness, MPa·m1/2 | 3.5 ± 0.3 | 8.92 ± 0.5 | 15.19 ± 0.7 |
| Elastic modulus, GPa | 200–210 | 205–215 | 220 |
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Samociuk, W.; Hevorkian, E.; Prikhna, T.; Chishkala, V.; Mamalis, A.; Rucki, M. Peculiarities of Yttria- and Ceria-Stabilized Zirconia Ceramics Fabricated via Electroconsolidation. Materials 2026, 19, 776. https://doi.org/10.3390/ma19040776
Samociuk W, Hevorkian E, Prikhna T, Chishkala V, Mamalis A, Rucki M. Peculiarities of Yttria- and Ceria-Stabilized Zirconia Ceramics Fabricated via Electroconsolidation. Materials. 2026; 19(4):776. https://doi.org/10.3390/ma19040776
Chicago/Turabian StyleSamociuk, Waldemar, Edvin Hevorkian, Tetiana Prikhna, Volodymir Chishkala, Athanasios Mamalis, and Miroslaw Rucki. 2026. "Peculiarities of Yttria- and Ceria-Stabilized Zirconia Ceramics Fabricated via Electroconsolidation" Materials 19, no. 4: 776. https://doi.org/10.3390/ma19040776
APA StyleSamociuk, W., Hevorkian, E., Prikhna, T., Chishkala, V., Mamalis, A., & Rucki, M. (2026). Peculiarities of Yttria- and Ceria-Stabilized Zirconia Ceramics Fabricated via Electroconsolidation. Materials, 19(4), 776. https://doi.org/10.3390/ma19040776

