z-logo
Premium
Criticality: Concept to Enhance the Piezoelectric and Electrocaloric Properties of Ferroelectrics
Author(s) -
Weyland Florian,
Acosta Matias,
Koruza Jurij,
Breckner Patrick,
Rödel Jürgen,
Novak Nikola
Publication year - 2016
Publication title -
advanced functional materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.069
H-Index - 322
eISSN - 1616-3028
pISSN - 1616-301X
DOI - 10.1002/adfm.201602368
Subject(s) - materials science , piezoelectricity , ferroelectricity , electric field , critical point (mathematics) , phase transition , condensed matter physics , criticality , ceramic , ferroics , realization (probability) , pyroelectricity , phase diagram , phase (matter) , quantum critical point , dielectric , optoelectronics , physics , quantum phase transition , composite material , mathematical analysis , statistics , mathematics , quantum mechanics , nuclear physics
Compositional engineering with a focus on structural phase transitions has been considered as the most important approach for enhancement of the functional properties of ferroelectric materials due to the critical fluctuation of physical properties. Of special interest are electric‐field‐induced phase transitions, which can terminate in a liquid–vapor‐type critical point with a strong enhancement of functional properties. Whereas the critical point in liquid–vapor space considers changes in temperature and pressure, the critical point in this study is placed in electric field–temperature diagrams. In single crystals, temperature and electric field of a critical point are sharply defined and therefore not appealing for practical applications. However, in ceramics, it is demonstrated that the orientational dependence of the critical point leads to a broadened temperature and electric field range. The presence of a diffuse critical point in ceramics provides a conceptually novel approach for the enhancement of functional properties, such as piezoelectric and electrocaloric (EC) responses, as validated here on the example of the 0.75Bi 1/2 Na 1/2 TiO 3 ‐0.25SrTiO 3 lead‐free relaxor ferroelectric ceramics. The realization of a broad criticality range will further facilitate the development of the piezoelectric and EC materials and provide an alternative concept to manipulate the functional properties by application of an electric field.

This content is not available in your region!

Continue researching here.

Having issues? You can contact us here