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Tailoring high-energy storage NaNbO-based materials from antiferroelectric to relaxor states. | LitMetric

AI Article Synopsis

  • Reversible phase transitions in antiferroelectric perovskite oxides are crucial for developing high-energy storage materials for green technology.
  • By modifying local structures and defect chemistry in NaNbO-based antiferroelectrics, researchers achieved significant improvements in energy storage and reversibility.
  • Techniques like X-ray diffraction and electron microscopy were used to analyze these materials, leading to a tenfold increase in energy storage density and a high efficiency of 90%.

Article Abstract

Reversible field-induced phase transitions define antiferroelectric perovskite oxides and lay the foundation for high-energy storage density materials, required for future green technologies. However, promising new antiferroelectrics are hampered by transition´s irreversibility and low electrical resistivity. Here, we demonstrate an approach to overcome these problems by adjusting the local structure and defect chemistry, delivering NaNbO-based antiferroelectrics with well-defined double polarization loops. The attending reversible phase transition and structural changes at different length scales are probed by in situ high-energy X-ray diffraction, total scattering, transmission electron microcopy, and nuclear magnetic resonance spectroscopy. We show that the energy-storage density of the antiferroelectric compositions can be increased by an order of magnitude, while increasing the chemical disorder transforms the material to a relaxor state with a high energy efficiency of 90%. The results provide guidelines for efficient design of (anti-)ferroelectrics and open the way for the development of new material systems for a sustainable future.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10024729PMC
http://dx.doi.org/10.1038/s41467-023-37060-4DOI Listing

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