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Gradient-Structured Ceramics with High Energy Storage Performance and Excellent Stability. | LitMetric

Gradient-Structured Ceramics with High Energy Storage Performance and Excellent Stability.

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Shanghai Key Laboratory for R&D and Application of Metallic Functional Materials, Functional Materials Research Laboratory, School of Materials Science and Engineering, Tongji University, Shanghai, 201804, P. R. China.

Published: February 2023

AI Article Synopsis

  • Lead-free ceramics are gaining popularity in pulsed power systems due to their high power density and eco-friendliness, but they face challenges with low energy storage density.
  • To address this issue, researchers designed gradient-structured ceramics using a tape-casting method, achieving improvements in energy storage density and efficiency.
  • These optimizations resulted in recoverable energy storage densities exceeding 6.5 J/cm³ and efficiencies around 90%, while maintaining stability across various conditions.

Article Abstract

Owing to the high power density, eco-friendly, and outstanding stability, the lead-free ceramics have attracted great interest in the fields of pulsed power systems. Nevertheless, the low energy storage density of such ceramics is undoubtedly a severe problem in practical applications. To overcome this limitation, the lead-free ceramics with gradient structures are designed and fabricated using the tape-casting method herein. By optimizing the composition and distribution of the gradient-structured ceramics, the energy storage density, and efficiency can be improved simultaneously. Under a moderate electric field of 320 kV cm , the value of recoverable energy storage density (W ) is higher than 4 J cm , and the energy storage efficiency (η) is of ≥88% for 20-5-20 and 20-10-20. Furthermore, the gradient-structured ceramics of 20-10-0-10-20 and 20-15-0-15-20 possess high applied electric field, large maximum polarization, and small remnant polarization, which give rise to ultrahigh W and η on the order of ≈6.5 J cm and 89-90%, respectively. In addition, the energy storage density and efficiency also exhibit excellent stability over a broad range of frequencies, temperatures, and cycling numbers. This work provides an effective strategy for improving the energy storage capability of eco-friendly ceramics.

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Source
http://dx.doi.org/10.1002/smll.202206125DOI Listing

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