AI Article Synopsis

  • Continuous advancements in nanotechnology necessitate innovative methods for materials synthesis that create new functional structures.
  • Nanoscale defects, particularly nonstoichiometric nanoregions (NSNRs), can serve as building blocks for intricate electrical polarization configurations in BiFeO_{3}, a key multiferroic material.
  • By adjusting substrate temperature during the growth of BiFeO_{3} thin films, researchers can generate charged NSNRs, which lead to unique polarization patterns that may enhance the material’s piezoelectric properties, paving the way for new ferroelectric or multiferroic nanodevices.

Article Abstract

Continuous developments in nanotechnology require new approaches to materials synthesis that can produce novel functional structures. Here, we show that nanoscale defects, such as nonstoichiometric nanoregions (NSNRs), can act as nano-building blocks for creating complex electrical polarization structures in the prototypical multiferroic BiFeO_{3}. An array of charged NSNRs are produced in BiFeO_{3} thin films by tuning the substrate temperature during film growth. Atomic-scale scanning transmission electron microscopy imaging reveals exotic polarization rotation patterns around these NSNRs. These polarization patterns resemble hedgehog or vortex topologies and can cause local changes in lattice symmetries leading to mixed-phase structures resembling the morphotropic phase boundary with high piezoelectricity. Phase-field simulations indicate that the observed polarization configurations are mainly induced by charged states at the NSNRs. Engineering defects thus may provide a new route for developing ferroelectric- or multiferroic-based nanodevices.

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Source
http://dx.doi.org/10.1103/PhysRevLett.120.137602DOI Listing

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