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Journal of Ceramic Science and Technology

The Journal of Ceramic Science and Technology publishes original scientific articles on all topics of ceramic science and technology from all ceramic branches. The focus is on the scientific exploration of  the relationships between processing, microstructure and properties of sintered ceramic materials as well as on new processing routes for innovative ceramic materials. The papers may have either theoretical or experimental background. A high quality of publications will be guaranteed by a thorough double blind peer review process.

The Journal is published by Göller Verlag GmbH on behalf of the Deutsche Keramische Gesellschaft (DKG). Edited by Yu-Ping Zeng, Shanghai Institute of Ceramics, Chinese Academy of Sciences, China.

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Reducing Dielectric Loss in CaCu3Ti4O12 Ceramics by Spark Plasma Sintering-Enabled Control of Grain-Boundary Potential Barriers

Zhisong Zhou, Jingdong Chen, Xiaogang Wang, Bo He, Qing Ma, Wenyan Wang

PetroChina Southwest Oil&Gasfield Company, No.8, Section 4, Huayang Avenue, Shuangliu District, Chengdu City, Sichuan Province, 610213, China

received February 15, 2026, received in revised form April 14, 2026, accepted April 19, 2026

Pages 1-12   DOI: 10.4416/JCST2026-00003

Abstract

CaCu3Ti4O12 (CCTO) ceramics exhibit a giant dielectric constant but often suffer from high dielectric loss that limits their practical use. In this work, Spark Plasma Sintering (SPS) was employed as a rapid, interface-aware densification route to regulate the microstructure and electrical response of CCTO without chemical doping. Dense ceramics were fabricated at 1 000 °C under 50 MPa with holding times of 5 – 30 min and compared with a conventionally sintered reference prepared at 1 100 °C for 12 h. The SPS samples showed finer and more homogeneous grains, reduced secondary-phase signatures, much lower dielectric loss, and a markedly stronger grain-boundary resistive response. The SPS-10 sample delivered ε′ ≈ 2.9 × 104 and tan δ = 0.022 at 1 kHz at room temperature. Impedance and nonlinear J-E analyses indicate that the superior dielectric behavior is consistent with more effective grain-boundary barriers in the SPS ceramics. Fracture-surface XPS is interpreted here only as supportive near-surface chemical information, rather than as direct proof of grain-boundary-specific defect chemistry. These results show that SPS can substantially suppress dielectric loss in CCTO by coordinating densification, microstructural refinement, and interfacial electrical response.

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Keywords

Internal barrier layer capacitor, grain-boundary engineering, Schottky barrier, impedance spectroscopy, nonlinear current-voltage behavior

References

1 Subramanian, M.A., Li, D., Duan, N., Reisner, B.A., Sleight, A.W.: High dielectric constant in ACu3Ti4O12 and ACu3Ti3FeO12 phases, J. Solid State Chem., 151, 323 – 325, (2000).

2 Ramirez, A.P., Subramanian, M.A., Gardel, M., Blumberg, G., Li, D., Vogt, T.: Giant dielectric constant response in a copper-titanate, Solid State Commun., 115, 217 – 220, (2000).

3 Li, M., Shen, Z., Nygren, M., Feteira, A., Sinclair, D.C., West, A.R.: Origin(s) of the apparent high permittivity in CaCu3Ti4O12 ceramics: clarification on the contributions from internal barrier layer capacitor and sample-electrode contact effects, J. Appl. Phys., 106, 104106, (2009).

4 Felix, A.A., Orlandi, M.O., Varela, J.A.: Schottky-type grain boundaries in CCTO ceramics, Solid State Commun., 151, 1377 – 1381, (2011).

5 Cohen, M.H., Neaton, J.B., He, L., Vanderbilt, D.: Extrinsic models for the dielectric response of CaCu3Ti4O12, J. Appl. Phys., 94, 3299 – 3306, (2003).

6 Yanchevskii, O.Z., V'yunov, O.I., Belous, A.G., Kovalenko, L.L.: Dielectric properties of CaCu3Ti4O12 ceramics doped with aluminium and fluorine, J. Alloys Compd., 874, 159861, (2021).

7 Yu, H., Liu, H., Hao, H., Luo, D., Cao, M.: Dielectric properties of CaCu3Ti4O12 ceramics modified by SrTiO3, Mater. Lett., 62, 1353 – 1355, (2008).

8 Chen, K., Li, G.L., Gao, F., Liu, J., Liu, J.M., Zhu, J.S.: Conducting grain boundaries in the high-dielectric-constant ceramic CaCu3Ti4O12, J. Appl. Phys., 101, 074101, (2007).

9 Ge, T., Annamalai, A.R., Magdaline, T.B.: Modern synthesis and sintering techniques of calcium copper titanium oxide (CaCu3Ti4O12) ceramics and its current trend in prospective applications: a mini-review, Nanomaterials, 12, 3181, (2022).

10 Cai, J., Lan, S., Wei, B., Qi, J., Nan, C.W., Lin, Y.H.: Colossal permittivity in high-entropy CaTiO3 ceramics by chemical bonding engineering, Nat. Commun., 16, 4008, (2025).

11 Chen, Y., Teng, Y., Zhao, X., Wu, L.: Effect of synthesis process on CuO segregation and dielectric properties of CaCu3Ti4O12 ceramic, J. Wuhan Univ. Technol. Mater. Sci. Ed., 34, 1089 – 1096, (2019).

12 Kaur, T., Punj, S., Kumar, R., Singh, K.: Effect of minor phase (CuO) on sinterability, grain size, and dielectric properties of CaCu3Ti4O12 ceramics, Appl. Phys. A, 126, 771, (2020).

13 Han, Y.H., Nishimura, T.: Spark plasma sintering, Adv. Appl. Ceram., 113, 65 – 66, (2014).

14 Hu, Z.Y., Zhang, Z.H., Cheng, X.W., Wang, F.C., Zhang, Y.F., Li, S.L.: A review of multi-physical fields induced phenomena and effects in spark plasma sintering: fundamentals and applications, Mater. Des., 191, 108662, (2020).

15 Guillon, O., Gonzalez-Julian, J., Dargatz, B., Kessel, T., Schierning, G., Räthel, J.: Field-assisted sintering technology/spark plasma sintering: mechanisms, materials, and technology developments, Adv. Eng. Mater., 16, 830 – 849, (2014).

16 Shen, H.Z., Zhao, L., Kong, X.R., Guo, R.F., Shen, P.: Ultrafast high-temperature sintering: principles, advantages, and applications, J. Eur. Ceram. Soc., 45, 117653, (2025).

17 Ahmadipour, M., Ain, M.F., Ahmad, Z.A.: A short review on copper calcium titanate (CCTO) electroceramic: synthesis, dielectric properties, film deposition, and sensing application, Nano-Micro Lett., 8, 291 – 311, (2016).

18 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., 39, 368 – 391, (2025).

19 Srivastav, D.K., Sahu, A., Kashyap, S.K., Babu, D.A., Maurya, R.S.: Microstructural phase evolution during spark plasma sintering of mechanically alloyed Ti-based partially amorphous powders, Metallogr. Microstruct. Anal., 14, 1281 – 1290, (2025).

20 Locci, A.M., Cincotti, A., Todde, S., Orrù, R., Cao, G.: A methodology to investigate the intrinsic effect of the pulsed electric current during the spark plasma sintering of electrically conductive powders, Sci. Technol. Adv. Mater., 11, 045005, (2010).

21 Petrášek, J., Ctibor, P., Sedláček, J., Lukáč, F.: Synthesis and pressure-assisted sintering of CaCu3Ti4O12 dielectrics, Ceramics, 4, 447 – 466, (2021).

22 Elashmawi, I.S., Ismail, A.M., Abdelghany, A.M., Hegazi, M.M., Yassin, A.Y.: Electrical investigation and enhancement of optical, structural, and dielectric properties of flexible PVDF/LiZnVO4 nanocomposites, Discov. Mater., 3, 19, (2023).

23 Adams, T.B., Sinclair, D.C., West, A.R.: Characterization of grain boundary impedances in fine- and coarse-grained CaCu3Ti4O12 ceramics, Phys. Rev. B, 73, 094124, (2006).

24 Lazanas, A.C., Prodromidis, M.I.: Electrochemical impedance spectroscopy – a tutorial, ACS Meas. Sci. Au, 3, 162 – 193, (2023).

25 Sinclair, D.C., Adams, T.B., Morrison, F.D., West, A.R.: CaCu3Ti4O12: one-step internal barrier layer capacitor, Appl. Phys. Lett., 80, 2153 – 2155, (2002).

26 Bremecker, D., Keil, P., Gehringer, M., Isaia, D., Rödel, J., Frömling, T.: Mechanically tuned conductivity at individual grain boundaries in polycrystalline ZnO varistor ceramics, J. Appl. Phys., 127, 034101, (2020).

27 Lin, Y.H., Cai, J., Li, M., Nan, C.W., He, J.: Grain boundary behavior in varistor-capacitor TiO2-rich CaCu3Ti4O12 ceramics, J. Appl. Phys., 103, 074111, (2008).

28 Riquet, G., Marinel, S., Bréard, Y., Harnois, C.: Sintering mechanism and grain growth in CaCu3Ti4O12 ceramics, Ceram. Int., 45, 9185 – 9191, (2019).

29 Samanta, B., Kumar, P., Prakash, C.: Effect of sintering temperature and Cu-rich secondary phase on dielectric properties of microwave processed CaCu3Ti4O12 ceramics, Ferroelectrics, 517, 46 – 57, (2017).

30 Brizé, V., Gruener, G., Wolfman, J., Fatyeyeva, K., Tabellout, M., Gervais, M.: Grain size effects on the dielectric constant of CaCu3Ti4O12 ceramics, Mater. Sci. Eng. B, 129, 135 – 138, (2006).

31 Idriss, H.: On the wrong assignment of the XPS O 1s signal at 531 – 532 eV attributed to oxygen vacancies in photo- and electro-catalysts for water splitting and other materials applications, Surf. Sci., 712, 121894, (2021).

32 Frankcombe, T.J.: Interpretation of oxygen 1s X-ray photoelectron spectroscopy of ZnO, Chem. Mater., 35, 5468 – 5474, (2023).

33 Feng, L., Tang, X., Yan, Y., Chen, X., Jiao, Z., Cao, G.: Decrease of dielectric loss in CaCu3Ti4O12 ceramics by la doping, Phys. Status Solidi A, 203, R22 – R24, (2006).

34 Kumar, R., Zulfequar, M., Senguttuvan, T.D.: Structural and impedance spectroscopic studies of spark plasma sintered CaCu3Ti4O12 dielectric ceramics: an evidence of internal resistive barrier effect, J. Mater. Sci. Mater. Electron., 27, 5233 – 5237, (2016).

35 Lin, H., He, X., Gong, Y., Pang, D., Yi, Z.: Tuning the nonlinear current-voltage behavior of CaCu3Ti4O12 ceramics by spark plasma sintering, Ceram. Int., 44, 8650 – 8655, (2018).

36 Tsuji, K., Chen, W.T., Guo, H., Lee, W.H., Guillemet-Fritsch, S., Randall, C.A.: Contrasting conduction mechanisms of two internal barrier layer capacitors: (Mn, Nb)-doped SrTiO3 and CaCu3Ti4O12, J. Appl. Phys., 121, 064107, (2017).

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