4.8 Article

Ultrahigh field-induced strain in lead-free ceramics

Journal

NANO ENERGY
Volume 76, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.nanoen.2020.105037

Keywords

Lead-free ceramics; Piezoelectric; Strain; Phase transitions; Polar nanoregions

Funding

  1. EPSRC (MASSIVE project) [EP/L017695/1]
  2. China Scholarship Council (CSC) [201506630005]
  3. Grant Agency of the Slovak Academy of Sciences (VEGA) [2/0038/20]
  4. Swedish Strategic Research Foundation [FFL15-0174]
  5. Wallenberg Academy Fellow Program
  6. Ministry of Science and Technology of Taiwan [MOST109-2636-M-009-002]
  7. Center for the Semiconductor Technology Research from The Featured Areas Research Center Program by the Ministry of Education (MOE) in Taiwan
  8. Ministry of Science and Technology, Taiwan [MOST 1092634-F-009-029]
  9. EPSRC [EP/L017695/1] Funding Source: UKRI

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Due to the worldwide concerns of environmental protection and sustainable development, lead-free piezoelectric materials are greatly desired for bridging the electrical energy to the mechanical energy. However, their lower energy conversion coefficient compared to the conventional lead-containing piezoelectric materials significantly limits their device applications. Herein, we introduce a novel strategy to increase the strain of lead-free ferroelectric system via material structure design to create polar nano regions (PNRs) and point defects in the material while retaining the global ferroelectric phase. This added short-range structural heterogeneity in the material will facilitate the field-induced phase transition and reversible domain wall switching to enhance the strain. Following this strategy, we demonstrate an ultrahigh strain induced by an electric field in non-textured lead-free Bi0.5Na0.5TiO3 (BNT)-based ceramics. The strain in unipolar mode (S-uni) can reach up to 0.74% at 70 kV/cm, making it the highest value in reported lead-free ceramics so far. This puts forward a good route to design high-performance piezoelectric materials by material structure engineering. It also reveals the promising potential of lead-free piezoelectric materials in practical electromechanical device applications.

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