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Alkali-deficiency driven charged out-of-phase boundaries for giant electromechanical response
- Source :
- Nature Communications, Nature Communications, Vol 12, Iss 1, Pp 1-8 (2021)
- Publication Year :
- 2021
-
Abstract
- Traditional strategies for improving piezoelectric properties have focused on phase boundary engineering through complex chemical alloying and phase control. Although they have been successfully employed in bulk materials, they have not been effective in thin films due to the severe deterioration in epitaxy, which is critical to film properties. Contending with the opposing effects of alloying and epitaxy in thin films has been a long-standing issue. Herein we demonstrate a new strategy in alkali niobate epitaxial films, utilizing alkali vacancies without alloying to form nanopillars enclosed with out-of-phase boundaries that can give rise to a giant electromechanical response. Both atomically resolved polarization mapping and phase field simulations show that the boundaries are strained and charged, manifesting as head-head and tail-tail polarization bound charges. Such charged boundaries produce a giant local depolarization field, which facilitates a steady polarization rotation between the matrix and nanopillars. The local elastic strain and charge manipulation at out-of-phase boundaries, demonstrated here, can be used as an effective pathway to obtain large electromechanical response with good temperature stability in similar perovskite oxides.<br />Phase boundary engineering through chemical alloying and phase control is a traditional approach to enhancing piezoelectric properties. Here, the authors design a strategy in alkali niobate films, utilizing alkali vacancies without alloying to form nanopillars enclosed.
- Subjects :
- Ferroelectrics and multiferroics
Phase boundary
Materials science
Electronic properties and materials
Science
General Physics and Astronomy
02 engineering and technology
010402 general chemistry
Epitaxy
01 natural sciences
General Biochemistry, Genetics and Molecular Biology
Article
Condensed Matter::Materials Science
Phase (matter)
Thin film
Polarization (electrochemistry)
Perovskite (structure)
Nanopillar
Multidisciplinary
Condensed matter physics
General Chemistry
021001 nanoscience & nanotechnology
Piezoelectricity
0104 chemical sciences
0210 nano-technology
Subjects
Details
- ISSN :
- 20411723
- Volume :
- 12
- Issue :
- 1
- Database :
- OpenAIRE
- Journal :
- Nature communications
- Accession number :
- edsair.doi.dedup.....517e93a1758d54f85906996dd0812f38