Large electromechanical strain and unconventional domain switching near phase convergence in a Pb-free ferroelectric

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作者
Sarangi Venkateshwarlu
Lalitha K. Venkataraman
Valentin Segouin
Frederick P. Marlton
Ho Chin Hin
Dmitry Chernyshov
Yang Ren
Mads R. V. Jørgensen
Sanjib Nayak
Jürgen Rödel
Laurent Daniel
Abhijit Pramanick
机构
[1] City University of Hong Kong,Department of Materials Science and Engineering
[2] Technical University of Darmstadt,Department of Materials and Earth Sciences
[3] Université Paris-Saclay,Center for Materials Crystallography, Department of Chemistry and iNANO
[4] CentraleSupélec,MAX IV Laboratory
[5] CNRS,undefined
[6] Laboratorie de Génie Electrique et Electronique de Paris,undefined
[7] Sorbonne Université,undefined
[8] CNRS,undefined
[9] Laboratoire de Génie Electrique et Electronique de Paris,undefined
[10] Aarhus University,undefined
[11] SNBL,undefined
[12] ESRF,undefined
[13] Peter the Great St. Petersburg Polytechnic University,undefined
[14] Advanced Photon Source,undefined
[15] Argonne National Laboratory,undefined
[16] Lund University,undefined
来源
Communications Physics | / 3卷
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摘要
In many ferroelectrics, large electromechanical strains are observed near regions of composition- or temperature- driven phase coexistence. Phenomenologically, this is attributed to easy re-orientation of the polarization vector and/or phase transition, although their effects are highly convoluted and difficult to distinguish experimentally. Here, we used synchrotron X-ray scattering and digital image correlation to differentiate between the microscopic mechanisms leading to large electrostrains in an exemplary Pb-free piezoceramic Sn-doped barium calcium zirconate titanate. Large electrostrains of ~0.2% measured at room-temperature are attributed to an unconventional effect, wherein polarization switching is aided by a reversible phase transition near the tetragonal-orthorhombic phase boundary. Additionally, electrostrains of ~0.1% or more could be maintained from room temperature to 140 °C due to a succession of different microscopic mechanisms. In situ X-ray diffraction elucidates that while 90° domain reorientation is pertinent below the Curie temperature (TC), isotropic distortion of polar clusters is the dominant mechanism above TC.
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  • [1] Bowen CR(2014)Piezoelectric and ferroelectric materials and structures for energy harvesting applications Energy Environ. Sci. 7 25-44
  • [2] Kim HA(2018)Lead-free piezoceramics: status and perspectives MRS Bull. 43 576-580
  • [3] Weaver PM(2018)Lead-free piezoceramics – the environmental and regulatory issues MRS Bull. 43 581-587
  • [4] Dunn S(2015)Transferring lead-free piezoelectric ceramics into applications J. Eur. Ceram. Soc. 35 1659-449
  • [5] Rödel J(2018)Cytotoxicity, chemical stability, and surface properties of ferroelectric ceramics for biomaterials J. Am. Ceram. Soc. 101 440-4938
  • [6] Li J-F(2018)Life cycle assessment and environmental profile evaluation of lead-free piezoelectrics in comparison with lead zirconate titanate J. Eur. Ceram. Soc. 38 4922-599
  • [7] Bell AJ(2018)High piezoelectricity by multiphase coexisting point: barium titanate derivatives MRS Bull. 43 595-55
  • [8] Deubzer O(2014)Relationship between electromechanical properties and phase diagram in the Ba(Zr Acta Mater. 80 48-265
  • [9] Rödel J(2015)Ti Phys. Rev. B 91 104108-309
  • [10] Acosta M(2001))O J. Solid State Chem. 162 260-343