Uneingeschränkter Zugang

Obtaining and Characterizing the Dielectric and Ferroelectric Properties of the PZT-Pms Complex System Through Solid State Reactions and Spark Plasma Sintering


Zitieren

Lonkar, C. M. (2015), Handbook of Nanoceramic and Nanocomposite Coatings and Materials, Chapter 25 Synthesis, Characterization, and Development of PZT-Based Composition for Power Harvesting and Sensors Application, pp. 551–577. Search in Google Scholar

Hamzioui, L., Kahoul, F., Guemache, A., Aillerie, M. and Boutarfaia, A. (2021), Effect of Zr/Ti Ratio on Piezoelectric and Dielectric Properties of 0.1Pb[Fe1/2Nb1/2]O3-0.9Pb[ZrxTi(1−x)]O30 Ceramics, Transactions of the Indian Ceramic Society, vol. 80(1), pp. 60-63. Search in Google Scholar

Miga, S., Molak, A. and Balin, K. (2020), The composition induced crossover in nonlinear dielectric response in (1 − x) Pb(Zr0.70Ti0.30)O3–x BiMn2O5 (x = 0, 0.02, 0.055, 0.11, 0.15, 0.22, and 1) ceramics, J. Electroceram, vol. 44, pp. 136–146. Search in Google Scholar

Yimnirun, R., Ananta, S. and Laoratanakul, P. (2004), Effects of Pb(Mg1/3Nb2/3)O3 mixed-oxide modification on dielectric properties of Pb(Zr0.52Ti0.48)O3 ceramics, Materials Science and Engineering, B, vol. 112(1), pp. 79–86. Search in Google Scholar

Du, G. et al. (2013), Large stable strain memory effect in poled Mn-doped Pb(Mn1/3Sb2/3)O3-Pb(Zr,Ti)O3 ceramics, Applied Physics Letters, vol. 102(16), pp. 162907(1-4). Search in Google Scholar

Li, C.-L., Chou, C.-C., and Tsai, D.-S. (2005), Fabrication and electric properties of PZN-based ceramics using modified columbite method, Journal of the European Ceramic Society, vol. 25(12), pp. 2197–2200. Search in Google Scholar

Sun, H. J., Liu, X. F., Zhou, J., Xu, Q., Liu, H. X. and Chen, W. (2007), Structure, Electrical Properties of xPNN-(1-x)PMNS Pseudoquintnary System Piezoceramics, Ferroelectrics, vol. 358(1), pp. 49–53. Search in Google Scholar

Bochenek, D., and Niemiec, P. (2018), Microstructure and physical properties of the multicomponent PZT-type ceramics doped by calcium, sodium, bismuth and cadmium, Applied Physics A, vol. 124(11), pp. 775(1-7). Search in Google Scholar

Cheng, L.-Q. et al. (2018), Significantly improved piezoelectric performance of PZTPMnN ceramics prepared by spark plasma sintering, RSC Advances, vol. 8(62), pp. 35594–35599. Search in Google Scholar

Seal, A., Mazumder, R., Sen, A. and Maiti, H. S. (2000), Fast firing of lead zirconate titanate ceramics at low temperature, Materials Chemistry and Physics, vol. 97(1), pp. 14–18. Search in Google Scholar

Corker, D. L., Whatmore, R. W., Ringgaard, E. and Wolny, W. W. (2000), Liquid-phase sintering of PZT ceramics, Journal of the European Ceramic Society, vol. 20(12), pp. 2039–2045. Search in Google Scholar

Hungría, T., Galy, J. and Castro, A. (2009), Spark Plasma Sintering as a Useful Technique to the Nanostructuration of Piezo-Ferroelectric Materials, Advanced Engineering Materials, vol. 11(8), pp. 615–631. Search in Google Scholar

Zhou, L., Zhao, Z., Zimmermann, A., Aldinger, F. and Nygren, M. (2004), Preparation and Properties of Lead Zirconate Stannate Titanate Sintered by Spark Plasma Sintering, Journal of the American Ceramic Society, vol. 87(4), pp. 606–611. Search in Google Scholar

Zhou, L., Rixecker, G., Aldinger, F., Zuo, R., and Zhao, Z. (2006), Electric Fatigue in Ferroelectric Lead Zirconate Stannate Titanate Ceramics Prepared by Spark Plasma Sintering, Journal of the American Ceramic Society, vol. 89(12), pp. 3868–3870. Search in Google Scholar

H. Vincent, X. Turrillas, I. Rasines: A novel structural type of hexagonal closest packing the ternary oxide, β-MnSb2O6. In: Materials Research Bulletin, 22(10), 1987, 1369–1379. Search in Google Scholar

Zhu, Z. G., Li, G. R., Zheng, L. Y. and Yin, Q. R. (2005), Microstructure, domain morphology and piezoelectric properties of Si-doped Pb(Mn1/3Sb2/3)O3–Pb(Zr,Ti)O3 systems, Materials Science and Engineering, B, vol. 119(1), pp. 46–50. Search in Google Scholar

Mudinepalli, V. and Leng, F. (2019), Dielectric and Ferroelectric Studies on High Dense Pb(Zr0.52Ti0.48)O3 Nanocrystalline Ceramics by High Energy Ball Milling and Spark Plasma Sintering, Ceramics, vol. 2(1), pp. 13–24. Search in Google Scholar

Randall, C. A., Kim, N., Kucera, J.-P., Cao, W. and Shrout, T. R. (2005), Intrinsic and Extrinsic Size Effects in Fine-Grained Morphotropic-Phase-Boundary Lead Zirconate Titanate Ceramics, Journal of the American Ceramic Society, vol. 81(3), pp. 677–688. Search in Google Scholar

Li, B., Zhu, Z., Li, G., Yin, Q. and Ding, A. (2004), Peculiar Hysteresis Loop of Pb(Mn1/3Nb2/3)O3–Pb(Ti,Zr)O3 Ceramics, Japanese Journal of Applied Physics, vol. 43(4A), pp. 1458–1463. Search in Google Scholar

Dumitru, A. I. et al. (2020), Investigations on the Doping Effects on the Properties of Piezoelectric Ceramics, Advanced Materials Research, 1158, pp. 105-114. Search in Google Scholar

Wu, Y. J., Uekawa, N., Kakegawa, K. and Sasaki, Y. (2002), Compositional fluctuation and dielectric properties of Pb(Zr0.3Ti0.7)O3 ceramics prepared by spark plasma sintering, Materials Letters, vol. 57(3), pp. 771–775. Search in Google Scholar

Maiwa, H., Kimura, O., Shoji, K. and Ochiai, H. (2005), Low temperature sintering of PZT ceramics without additives via an ordinary ceramic route, Journal of the European Ceramic Society, vol. 25(12), pp. 2383–2385. Search in Google Scholar

Udomkan, N., Limsuwan, P. and Tunkasiri, T. (2007), Effect of rare-earth (RE = La, Nd, Ce AND Gd) doping on the piezoelectric of PZT(52:48) ceramics, International Journal of Modern Physics, B, vol. 21 (6), pp. 4549-4559. Search in Google Scholar

Takeuchi, T., Tabuchi, M., Kondoh, I., Tamari, N. and Kageyama, H. (2004), Synthesis of Dense Lead Titanate Ceramics with Submicrometer Grains by Spark Plasma Sintering, Journal of the American Ceramic Society, vol. 83(3), pp. 541–544. Search in Google Scholar

eISSN:
2668-4217
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
2 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Informatik, andere, Technik, Elektrotechnik, Grundlagen der Elektrotechnik, Maschinenbau, Grundlagen des Maschinenbaus, Mathematik, Allgemeines