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Temperature evolution of the relaxor dynamics in Pb(Zn1 3Nb2 3)O3: A critical Raman analysis

  • J. Toulouse
  • , F. Jiang
  • , O. Svitelskiy
  • , W. Chen
  • , Z. G. Ye
  • Lehigh University
  • Princeton University
  • National High Magnetic Field Laboratory
  • Simon Fraser University

Research output: Contribution to journalArticlepeer-review

129 Scopus citations

Abstract

At the heart of the relaxor behavior lies the development of mesoscopic or intermediate range order and the low frequency or relaxation dynamics associated with it. To investigate this development, we have measured the Raman spectra of a Pb(Zn1 3Nb2 3)O3 (PZN) single crystal over a wide temperature range from 1000Kto150K. The spectra are analyzed using several different physical models, focusing particularly on the low frequency part. Both relaxation and coupled phonon dynamics are identified. The evolution of the relaxor dynamics is marked by three characteristic temperatures, Burns temperature, TB 650K, and two other temperatures, Td 470K and Tf 340K, which together define four major ranges. Combining the fitting results from the Raman spectra and other experimental results in PZN, we describe the relaxor dynamics in these four ranges, in terms of the strength and lifetime of the correlations between off-center ions. Relating the dynamics observed in PZN to that in KTa1-xNbxO3 (KTN), we develop a microscopic model based on the coexistence of a fast and a slow motion of the off-center Pb and Nb ions which accounts for both types of dynamics (coupled phonon and relaxational) between TB and Tf, and show evidence for a series of local phase transitions taking place below Td.

Original languageEnglish
Article number184106
JournalPhysical Review B - Condensed Matter and Materials Physics
Volume72
Issue number18
DOIs
StatePublished - 1 Nov 2005
Externally publishedYes

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