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Giant dynamic electromechanical response via field driven pseudo-ergodicity in nonergodic relaxors

Author

Listed:
  • He Qi

    (University of Science and Technology Beijing
    University of Science and Technology Beijing)

  • Tengfei Hu

    (Chinese Academy of Sciences)

  • Shiqing Deng

    (University of Science and Technology Beijing)

  • Hui Liu

    (University of Science and Technology Beijing)

  • Zhengqian Fu

    (Chinese Academy of Sciences)

  • Jun Chen

    (University of Science and Technology Beijing
    Hainan University)

Abstract

Enhanced electromechanical response can commonly be found during the crossover from normal to relaxor ferroelectric state, making relaxors to be potential candidates for actuators. In this work, (Pb0.917La0.083)(Zr0.65Ti0.35)0.97925O3 ceramic was taken as a case study, which shows a critical nonergodic state with both double-like P-E loop and irreversible relaxor-normal ferroelectric phase after poling at room temperature. The low-hysteresis linear-like S-P2 loop, in-situ synchrotron X-ray diffraction and transmission electron microscope results suggest that the nonpolar relaxor state acts as a bridge during polarization reorientation process, accompanying which lattice strain contributes to 61.8% of the total strain. In other words, the transformation from normal ferroelectric to nonergodic relaxor state could be triggered by electric field through polarization contraction, which could change to be spontaneously with slightly increasing temperature in the nonergodic relaxor zone. Therefore, pseudo-ergodicity in nonergodic relaxors (i.e. reversible nonergodic-normal ferroelectric phase transition) driven by periodic electric field should be the main mechanism for obtaining large electrostrain close to the nonergodic-ergodic relaxor boundary. This work provides new insights into polarization reorientation process in relaxor ferroelectrics, especially phase instability in nonergodic relaxor zone approaching to freezing temperature.

Suggested Citation

  • He Qi & Tengfei Hu & Shiqing Deng & Hui Liu & Zhengqian Fu & Jun Chen, 2023. "Giant dynamic electromechanical response via field driven pseudo-ergodicity in nonergodic relaxors," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-38006-6
    DOI: 10.1038/s41467-023-38006-6
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    References listed on IDEAS

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    1. Chaorui Qiu & Bo Wang & Nan Zhang & Shujun Zhang & Jinfeng Liu & David Walker & Yu Wang & Hao Tian & Thomas R. Shrout & Zhuo Xu & Long-Qing Chen & Fei Li, 2020. "Transparent ferroelectric crystals with ultrahigh piezoelectricity," Nature, Nature, vol. 577(7790), pages 350-354, January.
    2. Z. Kutnjak & J. Petzelt & R. Blinc, 2006. "The giant electromechanical response in ferroelectric relaxors as a critical phenomenon," Nature, Nature, vol. 441(7096), pages 956-959, June.
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