Published November 3, 2021 | Version 1.0
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Origin of relaxor behavior in barium titanate based lead-free relaxors

  • 1. Materials Center Leoben Forschung GmbH
  • 2. Vilnius University
  • 3. Technische Universität Darmstadt
  • 4. CNR-ICMATE
  • 5. Institute of Physics, Academy of Sciences of the Czech Republic
  • 6. TU Delft

Description

It is well known that disordered relaxor ferroelectrics exhibit local polar correlations. The origin of localized fields that disrupt long range polar order for different substitution types, however, is unclear. Currently, it is known that substituents of the same valence as Ti4+ at the B-site of barium titanate lattice produce random disruption of Ti-O-Ti chains that induces relaxor behavior. On the other hand, investigating lattice disruption and relaxor behavior resulting from substituents of different valence at the B-site is more complex due to the simultaneous occurrence of charge imbalances and displacements of the substituent cation. The existence of an effective charge mediated mechanism for relaxor behavior appearing at low (<10%) substituent contents in heterovalent modified barium titanate ceramics is evinced from this data, which underpin the publication by the same name currently in press by Advanced Electronic Materials. These results will add credits to the current understanding of relaxor behavior in chemically modified ferroelectric materials and also acknowledge the critical role of defects (such as cation vacancies) in lattice disruption, paving the way for chemistry-based materials design in the field of dielectric and energy storage applications

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Additional details

Funding

European Commission
CITRES - Chemistry and interface tailored lead-free relaxor thin films for energy storage capacitors 817190