131
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

Stress-Dependent Scaling Behavior of Ferroelectric Hysteresis Loop in 0–3 PZT-Cement Composites

, , &
Pages 26-33 | Received 26 Oct 2014, Accepted 15 Jan 2015, Published online: 23 Dec 2015

References

  • Z. Li, B. Dong, and D. Zhang: Influence of polarization on properties of 0–3 cement-based PZT composites. Cem Con Comp. 27, 27–32 (2005).
  • C. Xin, S. Huang, C. Jun, X. Ronghua, L. Futian, and L. Lingchao: Piezoelectric and dielectric properties of piezoelectric ceramic–sulphoaluminate cement composites. J Eur Ceram Soc. 25, 3223–3228 (2005).
  • H. Shifeng, Y. Zhengmao, H. Yali, C. Jun, L. Lingchao, and C. Xin: Effect of forming pressures on electric properties of piezoelectric ceramic/sulphoaluminate cement composites. Comp Sci Tech. 67:135–139 (2007).
  • A. Chaipanich, N. Jaitanong, and T. Tunkasiri: Fabrication and properties of PZT-ordinary Portland cement composites. Mats Letts. 61:5206–5208 (2007).
  • N. Jaitanong, A. Chaipanich, and T. Tunkasiri: Properties 0–3 PZT-Portland Cement Composites. Cerm Inter. 34, 793–795 (2008).
  • N. Jaitanong, R. Yimnirun, and A. Chaipanich: Effect of Uniaxial Stress on Dielectric Properties of 0–3 PZT-Portland Cement Composite. Ferroelectrics. 384:174–181 (2009).
  • N. Jaitanong, R. Yimnirun, and A. Chaipanich: Ferroelectric Hysteresis Behavior in 0–3 PZT-Cement Composites: Effects of Frequency and Electric Field. FerroLetts. 64, 562–564 (2010).
  • A. Chaipanich and N. Jaitanong: Effect of PZT particle size on the electromechanical coupling coefficient of 0–3 PZT-cement composites. Ferr Lett. 36:37–44 (2009).
  • A. Chaipanich: Effect of PZT particle size on dielectric and piezoelectric properties of PZT-cement composites. Curr Appl Phys. 7, 574–577 (2007).
  • H. Shifeng, Y. Zhengmao, H. Yali, C. Jun, and L. Lingchao, C. Xin: Effect of forming pressures on electric properties of piezoelectric ceramic/sulphoaluminate cement composites. Comp Sci Tech. 67, 135–139 (2007).
  • S. Huang, J. Chang, R. Xu, F. Liu, L. Lu, Z. Ye, and X. Cheng: Piezoelectric properties of 0–3 PZT/sulfoaluminate cement composites. Smart Mater Struct. 13, 270–274 (2004).
  • R. E. Newnham, and A. Amin: Systems: Microphones, Fish Farming, and Beyond. Chem Tech. 29:38–46 (1999).
  • J. M. Liu, H. L. W. Chan, C. L. Choy, Y. Y. Zhu, S. N. Zhu, Z. G. Liu, and N. B. Ming: Scaling on hysteresis dispersion in ferroelectric systems. Appl Phys Lett. 79, 236–238 (2001).
  • C. Xin, H. Shifeng, C. Jun, and Z. Li: Piezoelectric, dielectric, and ferroelectric properties of 0–3 ceramic/cementcomposites. J App phys. 101, 094110–6 (2007).
  • N. Jaitanong, W. C. Vittayakorn, R. Yimnirun, and A. Chaipanich: Ferroelectric hysteresis behavior of 0–3 PMNT-cement composites. Ferroelectrics. 405:105–110 (2010).
  • K. Uchino: Ferroelectric Devices. Dekker: New York; 145 doi:10.1063/1.882324.2000.
  • O. Auciello, J. F. Scott, and R. Ramesh: The Physics of Ferroelectric Memories. Phys Today. 51:22–25 (1998).
  • M. Rao, H. R. Krishnamurthy, and R. Pandit: Magnetic hysteresis in two model spin system. Phys Rev B. 42:856–884 (1990).
  • M. Acharyya, and B. K. Chakrabarti: Response of Ising systems to oscillating and pulsed fields: Hysteresis, ac, and pulse susceptibility. Phys Rev B. 52:6560–6568 (1995).
  • J. M. Liu, H. L. W. Chan, C. L. Choy, and C. K. Ong: Scaling of hysteresis dispersion in a model spin system. Phys Rev B. 65, 014416–9 (2001).
  • B. Pan, H. Yu, D. Wu, X. H. Zhou, and J. M. Liu: Dynamic response and hysteresis dispersion scaling of ferroelectric SrBi2Ta2O9 thin films. Appl Phys Lett. 83, 1406–1408 (2003).
  • Y. H. Kim, and J. J. Kim: Scaling behavior of an antiferroelectric hysteresis loop. Phys Rev B. 55, R11933–936 (1997).
  • J. H. Park, C. S. Kim, B. C. Choi, B. K. Moon, J. H. Jeong, and I. W. Kim: Scaling behavior of ferroelectric hysteresis loop in pulsed-laser-depositedSrBi2Ta2O9 thin film. Appl Phys Lett. 83 536–538 (2003).
  • R. Yimnirun, Y. Laosiritaworn, S. Wongsaenmai, and S. Ananta: Scaling behavior of dynamic hysteresis in soft lead zirconatetitanate bulk ceramics. Appl Phys Lett. 89, 162901–3 (2006).
  • R. Yimnirun, R. Wongmaneerung, S. Wongsaenmai, A. Ngamjarurojana, S. Ananta and Y. Laosiritaworn: Dynamic hysteresis and scaling behavior of hard lead zirconatetitanate bulk ceramics. Appl Phys Lett. 90, 112908–3 (2007).
  • R. Yimnirun, N. Wongdamnern, N. Triamnak, M. Unruan, A. Ngamjarurojana, S. Ananta, and Y. Laosiritaworn: Stress-dependent scaling behavior of subcoercive field dynamic ferroelectric hysteresis in PbZn1/3Nb2/3O3-modified PbZr1/2Ti1/2O3 ceramic. J Appl Phys. 103, 086105–3 (2008).
  • R. Yimnirun, Y. Laosiritaworn, and S. Wongsaenmai: Effect of uniaxial compressive pre-stress on ferroelectric properties of soft PZTceramics. J Phys D: Appl. Phys. 39:759–764 (2006).
  • R. Yimnirun, S. Ananta, Y. Laosiritaworn, A. Ngamjarurojana, and S. Wongsaenmai: Scaling Behavior of Dynamic Ferroelectric Hysteresis in Soft PZT Ceramic: Stress Dependence, Ferroelectrics. 358, 3–11 (2007).
  • D. Zhou, M. Kamlah, and D. Munz: Effects of uniaxial prestress on the ferroelectric hysteretic response of soft PZT. J Eur Ceram Soc. 25:425–432 (2005).
  • N. Wongdamnern, N. Triamnak, M. Unruan, K. Kanchiang, A. Ngamjarurojana, S. Ananta, Y. Laosiritaworn, and R. Yimnirun: Sub-coercive field dynamic hysteresis in morphotropic phase boundary composition of Pb(Zr1/2Ti1/2)O3–Pb(Zn1/3Nb2/3)O3 ceramic and its scaling behavior. Phys Letts A. 374:391–395 (2010).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.