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

Author:

Tang Luomeng1,Yu Ziyi23,Pan Zhongbin1ORCID,Zhao Jinghao1,Fu Zhenqian2,Chen Xiqi1,Li Huanhuan1,Li Peng4,Liu Jinjun1,Zhai Jiwei5

Affiliation:

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

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

3. School of Physical Science and Technology ShanghaiTech University Shanghai 201210 China

4. School of Materials Science and Engineering Liaocheng University Liaocheng Shandong 252059 China

5. School of Materials Science & Engineering Tongji University 4800 Caoan Road Shanghai 201804 China

Abstract

AbstractDriven 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 Bi0.5Na0.5TiO3 (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 Ca0.7La0.2TiO3 (CLT) into Bi0.395Na0.325Sr0.245TiO3 (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−3 with the ideal η ≈ 80% at 660 kV cm−1. 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.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Natural Science Foundation of Ningbo

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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