Evolution of ferroelectric and piezoelectric response by heat treatment in pseudocubic BiFeO3–BaTiO3 ceramics

Adnan Maqbool, Rizwan Ahmed Malik, Ali Hussain, Fazli Akram, Muhammad Asif Rafiq, Mohsin Saleem, Fazal Ahmad Khalid, Tae Kwon Song, Won Jeong Kim, Myong Ho Kim

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

Heat treatment of ceramics is an important process to tailor the fine electromechanical properties. To explore the criteria for optimized heat treatment in a perovskite structure of (1–x)Bi1.05FeO3–xBaTiO3 (BF–BT100x) system, the structural phase relation, ferroelectric and piezoelectric response of BF–BT36 and BF–BT40 ceramics prepared by furnace cooling (FC) and quenching process were investigated. The X-ray diffraction examination showed single pseudocubic perovskite structure for all the ceramics. The homogenous microstructure was obtained for all ceramics with relatively large grain size in the furnace cooled samples. Well saturated ferroelectric hysteresis loops and enhanced piezoelectric constant (d33 = 97 pC/N) were achieved by quenching process. Dielectric curve of BF–BT36 showed large dielectric constant at its Curie temperature, however, BF–BT40 showed diffused relaxor-like dielectric anomalies. Quenched BF–BT36 samples showed typical butterfly like field induced strain curves, however negative strain decreased in BF–BT40 ceramics. From these investigated study, it is observed that BF–BT ceramics are very sensitive to the heat treatment process (furnace cooling and quenching) on the dielectric, electromechanical properties.

Original languageEnglish
Pages (from-to)99-104
Number of pages6
JournalJournal of Electroceramics
Volume41
Issue number1-4
DOIs
StatePublished - 1 Dec 2018
Externally publishedYes

Keywords

  • BF–BT
  • Dielectric relaxation
  • Electric field induced strain
  • Quenching process

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