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Three-Dimensional Visualization of Oxygen-Vacancy Migration and Redistribution in Ca-Substituted BiFeO. | LitMetric

AI Article Synopsis

  • Ionic movement in ferroelectric oxides is crucial for chemical reactions and phase stability, receiving increased attention due to its high mobility under electric bias.
  • Studies using advanced techniques like conductive scanning probe microscopy reveal patterns in oxygen ionic migration and cation distribution affected by applied electric polarity.
  • The research shows that oxygen vacancies are ejected toward the surface and their behavior is influenced by tip polarity, highlighting the relationship between ionic kinetics and electrochemical processes.

Article Abstract

Ionic movement has received renewed attention in recent years, particularly in the field of ferroelectric oxides, since it is intrinsically linked to chemical reaction kinetics and ferroelectric phase stability. The associated surface electrochemical processes coupled local ionic transport with an applied electric bias, exhibiting very high ionic mobility at room temperature based on a simple electrostatics scenario. However, few studies have focused on the applied-polarity dependence of ionic migration with directly visualized maps. Here, we use incorporated experiments of conductive scanning probe microscopy and time-of-flight secondary ion mass spectrometry to investigate oxygen ionic migration and cation redistribution in ionic oxides. The local concentrations of oxygen vacancies and other cation species are visualized by three-dimensional mappings, indicating that oxygen vacancies tend to be ejected toward the surface. An accumulation of oxygen vacancies and ionic redistribution strongly depend on tip polarity, thus corroborating their role in the electrochemical process. This work illustrates the interplay between ionic kinetics and electric switching.

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Source
http://dx.doi.org/10.1021/acsnano.3c06675DOI Listing

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