406
Views
33
CrossRef citations to date
0
Altmetric
Original Articles

Broadband Dielectric Spectroscopy of Ba(Zr,Ti)O3: Dynamics of Relaxors and Diffuse Ferroelectrics

, , , , , , , & show all
Pages 14-25 | Accepted 31 Oct 2013, Published online: 09 Oct 2014

References

  • Q. Zhang, J. Zhai, and L.B. Kong, Relaxor Ferroelectric Materials for Microwave Tunable Applications. J. Adv. Diel. 2, 1230002-1/15 (2012).
  • T. Maiti, R. Guo, and A.S. Bhalla, Structure-Property Phase Diagram of BaZrxTi1-xO3 System. J. Am. Ceram. Soc. 91, 1769–1780 (2008).
  • T. Maiti, R. Guo, and A.S. Bhalla, Evaluation of Experimental Resume of BaZrxTi1-xO3 with Perspective to Ferroelectric Relaxor Family: An Overview. Ferroelectrics 425, 4 (2011).
  • V.V. Shvartsman and D.C. Lupascu, Lead-Free Relaxor Ferroelectrics. J. Am. Ceram, Soc. 95, 1–26 (2012).
  • A.R. Akbarzadeh, I. Kornev, C. Malibert, L. Bellaiche, and J.M. Kiat, Combined Theoretical and Experimental Study of the Low-Temperature Properties of BaZrO3. Phys. Rev. B 72, 205104-1/8 (2005).
  • C. Laulhe, A. Pasturel, F. Hippert, and J. Kreisel, Random Local Strain Effects in Homovalent-Substituted Relaxor Ferroelectrics: A First-Principles Study of BaTi0,74Zr0.26O3. Phys. Rev. B 82, 132102-1/4 (2010).
  • I.-K. Jeong, C.Y. Park, J.S. Ahn, S. Park, and D.J. Kim: Ferroelectric–Relaxor Crossover in Ba (Ti1-x,Zrx)O3 Studied Using Neutron Total Scattering Measurements and Reverse Monte-Carlo Modeling. Phys. Rev. B 81, 214119-1/5 (2010).
  • I. Levin, E. Cockayne, V. Krayzman, J.C. Woicik, S. Lee, and C.A. Randall, Local Structure of Ba(Ti,Zr)O3 Perovskite-Like Solid Solutions and Its Relation to the Band-Gap behavior. Phys. Rev. B 83, 094122-1/8 (2011).
  • A.R. Akbarzadeh, S. Prosandeev, E.J. Walter, A. Al-Barakaty, and L. Bellaiche, Finite-Temperature Properties of Ba(Zr,Ti)O3 Relaxors from First Principles. Phys. Rev. Lett. 108, 257601-1/5 (2012)
  • S. Prosandeev, D. Wang, A.K. Akbarzadeh, B. Dkhil, L. Bellaiche, Field-Induced Percolation of Polar Nanoregions in Relaxor Ferroelectrics. Phys. Rev. Lett. 110, 207601-1/5 (2013).
  • C. Laulhe, F. Hippert, J. Kreisel, A. Pastyrel, A. Simon, J.-L. Hazemann, R. Bellissent, and G.J. Cuello, Random Local Strain Effects in the Relaxor Ferroelectric Ba(Ti1−x,Zrx)O3: Experimental and Theoretical Investigation. Phase Transitions 84, 438–452 (2011).
  • A.A. Bokov, Z.-G. Ye, Recent Progress in Relaxor Ferroelectrics with Perovskite Structure. J. Mat. Sci. 41, 31–52 (2006).
  • J. Hlinka, Do We Need the Ether of Polar Nanoregions?. J. Adv. Diel. 2, 1241006-1/6 (2012).
  • D. Nuzhnyy, J. Petzelt, M. Savinov, T. Ostapchuk, V. Bovtun, M. Kempa, J. Hlinka, V. Buscaglia, M.T. Buscaglia, and P. Nanni, Broadband Dielectric Response of Ba(Zr,Ti)O3 Ceramics: From Incipient via Relaxor up to Classical Ferroelectric behavior. Phys. Rev. B 86, 014106-1/9 (2012).
  • J Hlinka, J. Petzelt, S. Kamba, D. Noujni, and T. Ostapchuk, Infrared Dielectric Response of Relaxor Ferroelectrics. Phase Transitions 79, 41–78 (2006).
  • I. Ponomareva, L. Bellaiche, T. Ostapchuk, J. Hlinka, and J. Petzelt, Terahertz Dielectric Response of Cubic BaTiO3. Phys Rev. B 77, 012102-1/4 (2008).
  • J. Hlinka, T. Ostapchuk, D. Nuzhnyy, J. Petzelt, P. Kuzel, C. Kadlec, P. Vanek, I. Ponomareva, and L. Bellaiche, Coexistence of the Phonon and Relaxation Soft Modes in the Terahertz Dielectric Response of Tetragonal BaTiO3. Phys. Rev. Lett. 101, 167402-1/4 (2008).
  • A.K. Tagantsev, Vogel-Fulcher relationship for the dielectric permittivity of relaxor ferroelectrics. Phys. Rev. Lett. 72, 1100–1103 (1994).
  • S. Kamba, V. Porokhonskyy, A. Pashkin, V. Bovtun, J. Petzelt, J.C. Nino, S. Trolier-McKinstry, M.T. Lanagan, and C.A. Randall, Anomalous broad dielectric relaxation in Bi1.5Zn1.0 Nb1.5O7 pyrochlore. Phys. Rev. B 66, 054106-1/8 (2002).
  • T. Ostapchuk, J. Petzelt, M. Savinov, V. Buscaglia, and L. Mitoseriu, Grain-size Effect in BaTiO3 ceramics: Study by Far Infrared Spectroscopy. Phase Transitions 79, 361–373 (2006).
  • J. Petzelt, Soft Mode Behavior In Cubic and Tetragonal BaTiO3 Crystals and Ceramics: Review on the Results of Dielectric Spectroscopy. Ferroelectrics 375, 156–164 (2008).
  • J. Weerasinghe, L. Bellaiche, T. Ostapchuk, P. Kuzel, C. Kadlec, S. Lisenkov, I. Ponomareva, and J. Hlinka, Emergence of Central Mode in the Paraelectric Phase of Ferroelectric Perovskites. MRS Commun. 3, 41–45 (2013).
  • T. Ostapchuk, J. Petzelt, P. Kuzel, M. Savinov, J. Hlinka, A. Tkach, P.M. Vilarinho, S. Lisenkov, I. Ponomareva, and L. Bellaiche, Lattices Dynamics in Ba0.7Sr0.3TiO3: Study by THz and IR Spectroscopy and Ab Initio Simulations. Phase Transitions 83, 955–965 (2010).
  • J. Hlinka, T. Ostapchuk, D. Noujni, S. Kamba, and J. Petzelt, Anisotropic Dielectric Function in Polar Nanoregions of Relaxor Ferroelectrics. Phys. Rev. Lett. 96, 027601-1/4 (2006).
  • V.L. Gurevich, A.K. Tagantsev, Intrinsic Dielectric Loss in Crystals. Adv. Phys. 40, 719–767 (1991).
  • K.F. Astafiev, A.K. Tagantsev, N. Setter, Quasi-Debye Microwave Loss as an Intrinsic Limitation of Microwave Performance of Tunable Components based on SrTiO3 and Ba1-xSrxTiO3 Ferroelectrics. J. Appl. Phys. 97, 014106-1/8 (2005).

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.