Realizing Excellent Energy Storage Performances in Tetragonal Tungsten Bronze Ceramics Via a B-Site Engineering Strategy

18 Pages Posted: 13 Aug 2022

See all articles by Chong Luo

Chong Luo

Hangzhou Dianzi University

Xiangting Zheng

Hangzhou Dianzi University

Peng Zheng

Hangzhou Dianzi University

Ziang Niu

Hangzhou Dianzi University

Kai Zhang

Hangzhou Dianzi University

Wangfeng Bai

Hangzhou Dianzi University

Qiaolan Fan

Hangzhou Dianzi University

Liang Zheng

Hangzhou Dianzi University

Yang Zhang

Hangzhou Dianzi University

Abstract

The development of dielectric energy storage capacitors has attracted much research interest in recent years. As an important category of dielectric materials, the energy storage potential of the tetragonal tungsten bronze structure ceramic has been underestimated for a long time due to the lower dielectric constant and low breakdown strength. In this work, a series of Sr 0.6 Ba 0.4 Nb 2 O 6 -based tungsten bronze ceramics with excellent energy storage performances was prepared based on a B-site engineering strategy. Enhanced relaxor behavior and improved breakdown strength induced by Ta substitution give rise to a high recoverable energy density of 3.95 J/cm 3 along with superior efficiency of 93.4%. Especially, the capacitor based on the Ta-modified Sr 0.6 Ba 0.4 Nb 2 O 6 ceramics exhibits a large current density of 845 A /cm 2  and a huge power density of 84.5 MW/cm 3 accompanied by a fast discharge time of 75 ns. All these results demonstrate the immense potential of the Ta-modified Sr 0.6 Ba 0.4 Nb 2 O 6 -based tetragonal tungsten bronze ceramics in the high-power energy storage capacitor field.

Keywords: ceramic capacitor, Energy storage, Tetragonal tungsten bronze, relaxor behaviour, breakdown strength

Suggested Citation

Luo, Chong and Zheng, Xiangting and Zheng, Peng and Niu, Ziang and Zhang, Kai and Bai, Wangfeng and Fan, Qiaolan and Zheng, Liang and Zhang, Yang, Realizing Excellent Energy Storage Performances in Tetragonal Tungsten Bronze Ceramics Via a B-Site Engineering Strategy. Available at SSRN: https://ssrn.com/abstract=4189330 or http://dx.doi.org/10.2139/ssrn.4189330

Chong Luo

Hangzhou Dianzi University ( email )

China

Xiangting Zheng

Hangzhou Dianzi University ( email )

China

Peng Zheng (Contact Author)

Hangzhou Dianzi University ( email )

China

Ziang Niu

Hangzhou Dianzi University ( email )

China

Kai Zhang

Hangzhou Dianzi University ( email )

China

Wangfeng Bai

Hangzhou Dianzi University ( email )

China

Qiaolan Fan

Hangzhou Dianzi University ( email )

China

Liang Zheng

Hangzhou Dianzi University ( email )

China

Yang Zhang

Hangzhou Dianzi University ( email )

China

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