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Coupled polarization and nanodomain evolution underpins large electromechanical responses in relaxors

Nature Physics, ISSN: 1745-2481, Vol: 18, Issue: 12, Page: 1502-1509
2022
  • 15
    Citations
  • 0
    Usage
  • 27
    Captures
  • 1
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    15
  • Captures
    27
  • Mentions
    1
    • News Mentions
      1
      • News
        1

Most Recent News

Size-driven phase evolution in ultrathin relaxor films

Ahn, C. H., Rabe, K. M. & Triscone, J.-M. Ferroelectricity at the nanoscale: local polarization in oxide thin films and heterostructures. Science 303, 488–491 (2004).

Article Description

Understanding the evolution and role of nanoscale polar structures during polarization rotation in relaxor ferroelectrics is a long-standing challenge in materials science and condensed-matter physics. These nanoscale polar structures are characterized by polar nanodomains, which are believed to play a key role in enabling the large susceptibilities of relaxors. Using epitaxial strain, we stabilize the intermediate step during polarization rotation in epitaxial films of a prototypical relaxor and study the co-evolution of polarization and polar nanodomains. Our multimodal approach allows for a detailed examination of correlations between polarization and polar nanodomains; illuminates the effect of local chemistry, strain and electric field on their co-evolution; and reveals the underappreciated role of strain in enabling the large electromechanical coupling in relaxors. As the strain increases, the competition between chemistry-driven disorder and strain-driven order of the polar units intensifies, which is manifested in the coexistence of inclined and elongated polar nanodomains in the intermediate step of polarization rotation. Our findings establish that structural transitions between polar nanodomain configurations underpins the polarization rotation and large electromechanical coupling of relaxors.

Bibliographic Details

Jieun Kim; Abel Fernandez; Zishen Tian; Lane W. Martin; Abinash Kumar; James M. LeBeau; Yubo Qi; Andrew M. Rappe; Hiroyuki Takenaka; Philip J. Ryan; Jong Woo Kim; Derek Meyers

Springer Science and Business Media LLC

Physics and Astronomy

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