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通过相结构工程在BNT基陶瓷中实现具有类反铁电特性的巨大储能密度

Giant Energy Storage Density with Antiferroelectric-Like Properties in BNT-Based Ceramics via Phase Structure Engineering.

作者信息

Tang Luomeng, Yu Ziyi, Pan Zhongbin, Zhao Jinghao, Fu Zhenqian, Chen Xiqi, Li Huanhuan, Li Peng, Liu Jinjun, Zhai Jiwei

机构信息

School of Materials Science and Chemical Engineering, Ningbo University, Ningbo, Zhejiang, 315211, China.

State Key Laboratory of High Performance Ceramics and Superfine Microstructures, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, China.

出版信息

Small. 2023 Oct;19(40):e2302346. doi: 10.1002/smll.202302346. Epub 2023 Jun 7.

Abstract

Driven by the information industry, advanced electronic devices require dielectric materials which combine both excellent energy storage properties and high temperature stability. These requirements hold the most promise for ceramic capacitors. Among these, the modulated Bi Na TiO (BNT)-based ceramics can demonstrate favorable energy storage properties with antiferroelectric-like properties, simultaneously, attaching superior temperature stability resulted from the high Curie temperature. Inspired by the above properties, a strategy is proposed to modulate antiferroelectric-like properties via introducing Ca La TiO (CLT) into Bi Na Sr TiO (BNST) ((1-x)BNST-xCLT, x = 0.10, 0.15, 0.20, 0.25). Combining both orthorhombic phase and defect dipole designs successfully achieve antiferroelectric-like properties in BNST-CLT ceramics. The results illustrate that 0.8BNST-0.2CLT presents superior recoverable energy storage density ≈8.3 J cm with the ideal η ≈ 80% at 660 kV cm . Structural characterizations demonstrate that there is the intermediate modulated phase with the coexistence of the antiferroelectric and ferroelectric phases. In addition, in situ temperature measurements prove that BNST-CLT ceramics exhibit favorable temperature stability over a wide temperature range. The present work illustrates that BNT-based ceramics with antiferroelectric-like properties can effectively enhance the energy storage performance, which provides novel perspectives for the subsequent development of advanced pulsed capacitors.

摘要

在信息产业的推动下,先进电子设备需要兼具优异储能性能和高温稳定性的介电材料。这些要求对陶瓷电容器最具前景。其中,基于调制铋钠钛(BNT)的陶瓷可以展现出具有类反铁电性质的良好储能性能,同时,由于居里温度高而具有卓越的温度稳定性。受上述特性启发,提出了一种通过将钙镧钛(CLT)引入铋钠锶钛(BNST)((1 - x)BNST - xCLT,x = 0.10、0.15、0.20、0.25)来调制类反铁电性质的策略。正交相和缺陷偶极设计相结合,成功在BNST - CLT陶瓷中实现了类反铁电性质。结果表明,0.8BNST - 0.2CLT在660 kV/cm下具有约8.3 J/cm³的优异可恢复储能密度,理想效率约为80%。结构表征表明存在反铁电相和铁电相共存的中间调制相。此外,原位温度测量证明BNST - CLT陶瓷在很宽的温度范围内具有良好的温度稳定性。目前的工作表明,具有类反铁电性质的BNT基陶瓷可以有效提高储能性能,这为先进脉冲电容器的后续发展提供了新的视角。

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