Read full paper at:
http://www.scirp.org/journal/PaperInformation.aspx?PaperID=49017#.VJerXcCAM4
http://www.scirp.org/journal/PaperInformation.aspx?PaperID=49017#.VJerXcCAM4
Author(s)
The 0.8Pb(Zr0.48Ti0.52)O3 – 0.125Pb(Zn1/3Nb2/3)O3 – 0.075Pb(Mn1/3Nb2/3)O3 + x wt% Fe2O3 ceramics (PZT-PZN-PMnN), where x = 0 ÷ 0.35, has been prepared by
two-stage calcination method. The effect of Fe2O3 content
on the crystal structure and electrical properties of ceramics has been
investigated. The results of X-ray diffraction (XRD) show that all samples have
pure perovskite phase with tetragonal structure, the c/a ratio increases with increasing Fe2O3 content. At x = 0.25, electrical properties of ceramics are best: the
density (r) of 7.86 g/cm3, the
electromechanical coupling factor (kp)
of 0.64, the dielectric constant (εr)
of 1400, the dielectric loss (tand) of 0.003, the mechanical quality
factor (Qm) of 1450, the
piezoelectric constant (d31)
of 155 pC/N, and the remanent polarization (Pr)
of 37 μC/cm2, which makes it as a promising material for high power
piezoelectric devices.
KEYWORDS
Cite this paper
Vuong, L. and Gio, P. (2014) Structure and Electrical Properties of Fe2O3-Doped PZT-PZN-PMnN Ceramics. Journal of Modern Physics, 5, 1258-1263. doi: 10.4236/jmp.2014.514126.
| [1] |
Fan, H. and Kim, H. (2002) Journal of Applied Physics, 91, 317-322. http://dx.doi.org/10.1063/1.1421036 |
| [2] | Xu, Y. (1991) Ferroelctric Materials and Their Applications (North-Holland, Amsterdam-London-Newyork-Tokyo). |
| [3] |
Seo, S.B., Lee, S.H., Yoon,
C.B., Park, G.T. and Kim, H.E. (2004) Journal of the American Ceramic
Society, 87, 1238-1243. http://dx.doi.org/10.1111/j.1551-2916.2004.tb20095.x |
| [4] |
Yan, Y.K., Kumar, A., Correa,
M., Cho, K.-H., Katiyar, R.S. and Priya, S. (2012) Applied Physics
Letters, 100, Article ID: 152902. http://dx.doi.org/10.1063/1.3703124 |
| [5] | Gao, F., Cheng, L., Hong, R., Liu, J., Wang, C. and Tian, C. (2009) Ceramics International, 35, 1719-1723. |
| [6] |
Kim, Y.H., Ryu, H., Cho, Y.-K.,
Lee, H.-J. and Nahm, S. (2013) Journal of the American Ceramic Society,
96, 31-317. http://dx.doi.org/10.1111/j.1551-2916.2012.05461.x |
| [7] |
Zhu, M.K., Lu, P.X., Hou, Y.D.,
Wang, H. and Yan, H. (2005) Journal of Materials Research, 20,
2670-2675. http://dx.doi.org/10.1557/JMR.2005.0339 |
| [8] |
Zhu, M.K., Lu, P.X., Hou, Y.D.,
Song, X.M., Wang, H. and Yan, H. (2006) Journal of the American Ceramic
Society, 89, 3739-3744. http://dx.doi.org/10.1111/j.1551-2916.2006.01281.x |
| [9] |
Li, J., He, Z.B. and Damjanovic,
D. (2009) Applied Physics Letters, 95, Article ID: 012905. http://dx.doi.org/10.1063/1.3173198 |
| [10] | Du, J., Qiu, J., Zhu, K., et al. (2012) Journal of Materials Letters, 66, 507-510. |
| [11] | L.D. Vuong, Gio, P.D., Chuong, T.G.V., Trang, D.T.H., Hung, D.V. and Duong, N.T. (2013) International Journal of Materials and Chemistry, 3, 39-43. |
| [12] | Vuong, L.D. and Gio, P.D. (2013) International Journal of Materials Science and Applications, 2, 89-93. eww141222lx |
评论
发表评论