Issue 47, 2025

Simultaneous enhancement of the energy storage, transparency, and hardness properties of K0.5Na0.5NbO3-based ceramics via a synergistic optimization strategy

Abstract

The development of dielectric capacitors with good overall performance is urgently needed to meet the growing demand for multifunctional energy storage devices. However, most high-energy storage ceramics rely on large polarization or electric field strength, and it is challenging to integrate these with other properties, such as high transparency or hardness. This study achieves a synergistic optimization of energy storage performance, optical transparency, and mechanical hardness under a moderate-strength electric field by designing a (1 − x)(K0.5Na0.5)NbO3x(Bi(Zn0.5Nb0.4)O3) (KNN–BZN) ceramic. The results show that a high recoverable energy storage density (Wrec = 2.65 J cm−3), energy storage efficiency (η = 85.96%) and optical transmittance (66%) were obtained under a moderate electric field when x = 0.15. The introduction of BZN had a significant effect on the microstructure and relaxation of the KNN-based ceramics, leading to a decrease in grain size, denser ceramics, and prompting the formation of polar nano-regions (PNRs). Meanwhile, the bandgap of 0.85KNN-0.15BZN is shown to be the largest from first-principles calculations, with a value of about 2.72 eV, and a high hardness of 13.12 GPa is obtained. These results indicate that KNN–BZN lead-free ferroelectrics have a promising future in the field of multifunctional energy storage ceramics.

Graphical abstract: Simultaneous enhancement of the energy storage, transparency, and hardness properties of K0.5Na0.5NbO3-based ceramics via a synergistic optimization strategy

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Article information

Article type
Paper
Submitted
09 Aug 2025
Accepted
16 Oct 2025
First published
21 Oct 2025

J. Mater. Chem. A, 2025,13, 41365-41374

Simultaneous enhancement of the energy storage, transparency, and hardness properties of K0.5Na0.5NbO3-based ceramics via a synergistic optimization strategy

C. Liu, Z. Dai, Y. Zheng, X. Li, R. Dai, Y. Liu, W. Liu, S. Zhou, S. Gu, M. Fang and X. Ren, J. Mater. Chem. A, 2025, 13, 41365 DOI: 10.1039/D5TA06456B

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