| Literature DB >> 28758269 |
Anoop R Damodaran1, Shishir Pandya1, Josh C Agar1, Ye Cao2, Rama K Vasudevan2,3, Ruijuan Xu1, Sahar Saremi1, Qian Li2, Jieun Kim1, Margaret R McCarter4, Liv R Dedon1, Tom Angsten1, Nina Balke2,3, Stephen Jesse2,3, Mark Asta1, Sergei V Kalinin2,3, Lane W Martin1,5.
Abstract
Leveraging competition between energetically degenerate states to achieve large field-driven responses is a hallmark of functional materials, but routes to such competition are limited. Here, a new route to such effects involving domain-structure competition is demonstrated, which arises from strain-induced spontaneous partitioning of PbTiO3 thin films into nearly energetically degenerate, hierarchical domain architectures of coexisting c/a and a1 /a2 domain structures. Using band-excitation piezoresponse force microscopy, this study manipulates and acoustically detects a facile interconversion of different ferroelastic variants via a two-step, three-state ferroelastic switching process (out-of-plane polarized c+ → in-plane polarized a → out-of-plane polarized c- state), which is concomitant with large nonvolatile electromechanical strains (≈1.25%) and tunability of the local piezoresponse and elastic modulus (>23%). It is further demonstrated that deterministic, nonvolatile writing/erasure of large-area patterns of this electromechanical response is possible, thus showing a new pathway to improved function and properties.Entities:
Keywords: electromechanical responses; ferroelectrics; thin-film epitaxy; three-state ferroelastic switching
Year: 2017 PMID: 28758269 DOI: 10.1002/adma.201702069
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849