Correlating local structure with properties in piezoelectrics, and multiferroics.

DOI

Discovery and development of advanced materials requires understanding and control of the relationship between composition, structure and function. Traditionally, design has relied upon the average structure of the unit cell as determined by Bragg diffraction, but it has become apparent that deviations from this long-range average view of the structure, at length scales both larger and smaller than the unit cell, can have decisive effects. Here, as a key part of a new Leeds-Liverpool EPSRC project, we propose to study three systems: Bi2MgTiO6-BiFeO3-CaTiO3 (BMT-BF-CT) a lead free piezoelectric and room temperature multiferroic, BiFeO3-(K½Bi½)TiO3-PbTiO3 (BF-KBT-PT) high temperature piezoelectrics, and Pb(In½Nb½)O3-Pb(Mg1/3Nb2/3)O3-PbTiO3 (PIN-PMN-PT) high strain piezoelectrics which represent best in class properties for single crystal piezoelectric devices.

Identifier
DOI https://doi.org/10.5286/ISIS.E.RB1820438-1
Metadata Access https://icatisis.esc.rl.ac.uk/oaipmh/request?verb=GetRecord&metadataPrefix=oai_datacite&identifier=oai:icatisis.esc.rl.ac.uk:inv/103217611
Provenance
Creator Dr Anton Goetzee-Barral; Miss Yang Li; Dr John Claridge; Dr Helen Playford; Dr Jonathan Alaria; Dr Thomas Whittle; Professor Andrew Bell; Dr Matthew Rosseinsky; Dr Todd Wesley Surta; Dr Philippa Shepley; Mr Tolly Robinson
Publisher ISIS Neutron and Muon Source
Publication Year 2022
Rights CC-BY Attribution 4.0 International; https://creativecommons.org/licenses/by/4.0/
OpenAccess true
Contact isisdata(at)stfc.ac.uk
Representation
Resource Type Dataset
Discipline Chemistry; Natural Sciences; Physics
Temporal Coverage Begin 2019-06-22T07:00:00Z
Temporal Coverage End 2019-06-27T07:10:54Z