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Original Articles

Dielectric, Ferroelectric and Piezoelectric Properties of the Lead Free 0.9BaTiO3-(0.1-x)Bi0.5Na0.5TiO3-xBi(Mg0.5Ti0.5)O3 Solid Solution

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Pages 23-35 | Received 26 Oct 2014, Accepted 20 Jan 2015, Published online: 29 Jan 2016

References

  • J. Rödel, W. Jo, K. T. P. Seifert, E. M. Anton, and T. Granzow, D. Damjanovic, Perspective on the development of lead-free piezoceramics. J Am Ceram Soc. 92, 1153–1177 (2009).
  • M. Rawat, and K. L. Yadav, Structural, dielectric and ferroelectric properties of Ba(1-x)(Bi0.5Na0.5)xTiO3 ceramics. Ceram Int. 39, 3627–3633 (2013).
  • J. Wu, D. Xiao, W. Wu, Q. Chen, Q. Zhu, Z. Yang, and J. Wang, Role of room-temperature phase transition in the electrical properties of (Ba, Ca)(Ti, Zr)O3 ceramics. Scripta Mater. 65, 771–774 (2011).
  • J. Wu, A. Habibul, X. Cheng, X. Wang, and B. Zhang, Orthorhombic–tetragonal phase coexistence and piezoelectric behavior in (1-x)(Ba,Ca)(Ti,Sn)O3–x(Ba,Ca)(Ti,Zr)O3 lead-free ceramics
  • T. Takenaka, K. Maruyama, and K. Sakata, (Bi1/2Na1/2)TiO3-BaTiO3 System for Lead Free Piezoelectric Ceramics. Jpn J Appl Phys. 30, 2236–2239 (1991).
  • L. Gao, L. Huang, Y. Hu, and H. Du, Dielectric and ferroelectric properties of (1-x)BaTiO3–xBi0.5Na0.5TiO3 ceramics. Ceram Int. 33, 1041–1046 (2007).
  • S. Zhang, A. B. Kounga, E. Aulbach, T. Granzow, W. Jo, and H. Kleebe, Rödel J: Lead-free piezoceramics with giant strain in the system Bi0.5Na0.5TiO3-BaTiO3 - K 0.5Na0.5NbO3. I. Structure and room temperature properties. J Appl Phys. 103, 034107 (2008).
  • J. F. Trelca, C. Courtois, M. Rguiti, A. Leriche, P. H. Duvigneaud, and T. Segato, Morphotropic phase boundary in the BNT–BT–BKT system. Ceram Int. 38, 2823–2827 (2012).
  • J. U. Rahman, A. Hussain, A. Maqbool, G. H. Ryu, T K Song, W. Kim, and M. H. Kim, Field induced strain response of lead-free BaZrO3-modified Bi0.5Na0.5TiO3-BaTiO3 ceramics. J. Alloy Compd. 593, 97–102 (2014).
  • S. Wadda, K. Yamato, P. Pulpan, N. Kumada, B. Y. Lee, T. Iijima, C. Moriyoshi, and Y. Kuroiwa, Preparation of barium titanate–bismuth magnesium titanate ceramics with high Curie temperature and their piezoelectric properties. J. Ceram Soc Jpn. 118(8), 683–687 (2010).
  • Q. Wang, J. Chen, L. Fan, L. Liu, L. Fang, and X. Xing, Preparation and Electric Properties of Bi0.5Na0.5TiO3–Bi(Mg0.5Ti0.5)O3 Lead-Free Piezoceramics. J. Am. Ceram. Soc. 96(4), 1171–1175 (2013).
  • R. D. Shannon, Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides. Acta Crystallogr.,Sect. A: Cryst. Phys.,Diffr.,Theor. Gen. Crystallogr. A 32, 751–767 (1976).
  • A. S. Bhalla, R. Guo, and R. Roy, The perovskite structure - a review of its role in ceramic science and technology. Mater Res Innov. 4, 3–26 (2000).
  • O. Muller, and R. Roy, The major ternary structural families. (Springer-Verlag Berlin-Heidelberg-New/sYork (1974).
  • B. Jaffe, and W. R. Cook, Piezoelectric ceramics. (Academic Press, New York, (1971).
  • G. A. Smolenskii, Physical phenomena in ferroelectrics with diffuse phase transition. Jpn. J. Phys. Soc. 28, 26–37 (1970).
  • S. K. Rout, E. Sinha, and S. Panigrahi, Dielectric properties and diffuse phase transition in Ba(1-x)MgxTi0.6Zr0.4O3 solid solutions. Mater.Chem.Phys. 101, 428–432 (2007).
  • K. Uchino, and S. Nomura, Critical exponent of the dielectric constant in diffused-phase-transition crystals. Ferroelectrics Lett. 44, 55 (1982).
  • R. Clarke, and J. C. Burfoot, The diffuse phase transition in potassium strontium niobate. Ferroelectrics. 48, 505 (1974).
  • V. A. Isupov, Nonlinearity of the concentration dependence of the Curie temperature in ferroelectric perovskite solid solutions. Phys Stat. Sol. (a). 181, 21 (2000).
  • R. J. Bratton, and T. Y. Tien, Phase Transitions in the System BaTiO3—KNbO3. J Am Ceram Soc. 50, 90–93 (1967).
  • F. He, X. Chen, J. Chen, Y. Wang, H. Zhou, and L. Fang, (K0.5Na0.5)NbO3-Bi(Mg0.5Ti0.5)O3 solid solution: phase evolution, microstructure and electrical properties. J Mater Sci-Mater El. 24, 4346–4350 (2013).
  • W. Bai, Y. Bian, J. Hao, B. Shen, and J. Zhai, The Composition and Temperature-Dependent Structure Evolution and Large Strain Response in (1-x)(Bi0.5Na0.5)TiO3-xBa(Al0.5Ta0.5)O3 Ceramics. J. Am. Ceram. Soc. 96(1), 246–252 (2013).
  • D. Xu, W. L. Li, L. D. Wang, W. Wang, W. P. Cao, and W. D. Fei, Large piezoelectric properties induced by doping ionic pairs in BaTiO3 ceramics. Acta materialia. 79, 84–92 (2014).
  • G. H. Haertling, and W. J. Zimmer, Analysis of hot-pressing parameters for lead zirconate-lead titanate ceramics containing two atom percent bismuth. Am. Ceram. Soc. Bull. 45, 1084–1089 (1966).
  • D. Xu, W. L. Li, L. D. Wang, W. Wang, W. P. Cao, and W. D. Fei, Large piezoelectric properties induced by doping ionic pairs in BaTiO3 ceramics. Acta mater. 79, 84–92 (2014).
  • I. Fujit, K. Nakashima, N. Kumada and S. Wada, Structural, Dielectric and piezoelectric properties of BaTiO3–Bi(Ni1/2Ti1/2)O3 ceramics. J. Ceram Soc Jpn. 120, 30–34 (2012).

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