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Improvement of the Figure of Merit in Pb[(Mg1/3Ta2/3)0.7Ti0.3]O3 Systems

  • Kim, Yeon Jung (Center for Innovative Engineering Education, Dankook University)
  • Received : 2016.09.19
  • Accepted : 2016.09.29
  • Published : 2016.09.30

Abstract

The $Pb[(Mg_{1/3}Ta_{2/3})_{0.7}Ti_{0.3}]O_3$+xwt%PbO systems at temperature of $1250^{\circ}C$ for 4 hours was successful synthesized. In this study, PbO-doped $Pb[(Mg_{1/3}Ta_{2/3})_{0.7}Ti_{0.3}]O_3$ systems with non-linear behaviors showed ordering-degree dependence at the low temperature range were prepared using the columbite precursor method. And the characteristic of remnant polarization vs. electric field were analyzed. The pyroelectric, dielectric and piezoelectric properties of partially disordered $Pb[(Mg_{1/3}Ta_{2/3})_{0.7}Ti_{0.3}]O_3$+xwt%PbO solid solutions were studied as a function of temperature, frequency, and electric field. It showed distinct features of temperature dependent of pyroelectric coefficient, spontaneous polarization and dielectric constant at about $50^{\circ}C$. The figure of merit was calculated as pyroelectric coefficient, dielectric constant and dissipation factor. It was found that the high voltage responsivity FV, high detectivity FD were $0.0373m^2/C$ and $0.6735{\times}10^{-4}Pa{-1/2}$, respectively, in the $Pb[(Mg_{1/3}Ta_{2/3})_{0.7}Ti_{0.3}]O_3$+3.0 wt%PbO system.

Keywords

References

  1. R. W. Whatmore, J. Electroceram., 13, 139 (2004). https://doi.org/10.1007/s10832-004-5090-2
  2. S. W. Choi and J. M. Jung, J. Korean Phys. Soc., 29, S672 (1996).
  3. J. M. Jung et al, Ferroelectrics, 230, 127 (1999). https://doi.org/10.1080/00150199908214907
  4. J. S. Kim and N. K. Kim, Mat. Res. Bull., 35, 2479 (2000). https://doi.org/10.1016/S0025-5408(00)00431-1
  5. A. Kania et al, Journal of Crystal Growth, 310, 594-598 (2008). https://doi.org/10.1016/j.jcrysgro.2007.11.109
  6. S. L. Swartz and T. R. Shrout, Mat. Res. Bull., 17, 1245 (1982). https://doi.org/10.1016/0025-5408(82)90159-3
  7. C. B. Sawyer and C. H. Tower, Phys. Rev., 269, 35 (1930).
  8. R. L. Byer and C. B. Roundy, Ferroelectrics, 3, 333 (1972). https://doi.org/10.1080/00150197208235326
  9. Proc. IRE. Inst. Radio Engs., 49, 1161 (1961).
  10. J. E. Garcia et al, J. of Phys.: Condens. Mat., 17(44), 7143 (2005). https://doi.org/10.1088/0953-8984/17/44/007
  11. N. Setter and L. E. Cross, J. Appl. Phys., 51, 4356 (1980). https://doi.org/10.1063/1.328296
  12. M. T. Kesim et al, J. Appl. Phys., 114, 204104 (2013).
  13. H. Budzier and G. Gerlach, Thermal infrared sensors: theory, optimization and practice, John Wiley & Sons Ltd., United Kingdom (2011).
  14. A. Movchikova et al, AMA Conferences 2013-Sensor 2013, 16 (2013).
  15. L. Long et al, J. Chinese Ceram. Soc., 42(4), 423 (2014).
  16. Y. J. Kim, Appl. Sci. Converg. Technol., 24(6), 215 (2015). https://doi.org/10.5757/ASCT.2015.24.6.215