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Ultrahigh piezoelectricity in ferroelectric ceramics by design
by
Chen, Zibin
, Wang, Jianli
, Long-Qing, Chen
, Cheng, Zhenxiang
, Shrout, Thomas R
, Huang, Qianwei
, Xu, Zhuo
, Li, Fei
, Zhang, Shujun
, Lin, Dabin
, Li, ChunChun
, Liao, Xiaozhou
in
Boundary layers
/ Ceramics
/ Curie temperature
/ Design
/ Electricity
/ Ferroelectric materials
/ Ferroelectricity
/ Heterogeneity
/ Piezoelectricity
/ Rare earth elements
/ Transducers
2018
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Ultrahigh piezoelectricity in ferroelectric ceramics by design
by
Chen, Zibin
, Wang, Jianli
, Long-Qing, Chen
, Cheng, Zhenxiang
, Shrout, Thomas R
, Huang, Qianwei
, Xu, Zhuo
, Li, Fei
, Zhang, Shujun
, Lin, Dabin
, Li, ChunChun
, Liao, Xiaozhou
in
Boundary layers
/ Ceramics
/ Curie temperature
/ Design
/ Electricity
/ Ferroelectric materials
/ Ferroelectricity
/ Heterogeneity
/ Piezoelectricity
/ Rare earth elements
/ Transducers
2018
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Ultrahigh piezoelectricity in ferroelectric ceramics by design
by
Chen, Zibin
, Wang, Jianli
, Long-Qing, Chen
, Cheng, Zhenxiang
, Shrout, Thomas R
, Huang, Qianwei
, Xu, Zhuo
, Li, Fei
, Zhang, Shujun
, Lin, Dabin
, Li, ChunChun
, Liao, Xiaozhou
in
Boundary layers
/ Ceramics
/ Curie temperature
/ Design
/ Electricity
/ Ferroelectric materials
/ Ferroelectricity
/ Heterogeneity
/ Piezoelectricity
/ Rare earth elements
/ Transducers
2018
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Ultrahigh piezoelectricity in ferroelectric ceramics by design
Journal Article
Ultrahigh piezoelectricity in ferroelectric ceramics by design
2018
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Overview
Piezoelectric materials, which respond mechanically to applied electric field and vice versa, are essential for electromechanical transducers. Previous theoretical analyses have shown that high piezoelectricity in perovskite oxides is associated with a flat thermodynamic energy landscape connecting two or more ferroelectric phases. Here, guided by phenomenological theories and phase-field simulations, we propose an alternative design strategy to commonly used morphotropic phase boundaries to further flatten the energy landscape, by judiciously introducing local structural heterogeneity to manipulate interfacial energies (that is, extra interaction energies, such as electrostatic and elastic energies associated with the interfaces). To validate this, we synthesize rare-earth-doped Pb(Mg1/3Nb2/3)O3–PbTiO3 (PMN–PT), as rare-earth dopants tend to change the local structure of Pb-based perovskite ferroelectrics. We achieve ultrahigh piezoelectric coefficients d33 of up to 1,500 pC N−1 and dielectric permittivity ε33/ε0 above 13,000 in a Sm-doped PMN–PT ceramic with a Curie temperature of 89 °C. Our research provides a new paradigm for designing material properties through engineering local structural heterogeneity, expected to benefit a wide range of functional materials.
Publisher
Nature Publishing Group
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