Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8948540 | Journal of the European Ceramic Society | 2018 | 23 Pages |
Abstract
0.82[0.94Bi0.5Na0.5TiO3-0.06BaTiO3]-0.18K0.5Na0.5NbO3:xZnO (BNT-BT-KNN:xZnO, xâ¯=â¯0-0.40) relaxor composites were prepared and their electrical properties were investigated. The breakdown electric field increases with increasing ZnO content. For xâ¯=â¯0 and xâ¯=â¯0.40 samples, the maximum recoverable energy storage density is 0.74â¯J/cm3 and 1.03â¯J/cm3 while the maximum energy storage efficiency is 86.7% and 72.7% under the electric field of 9.0â¯kV/mm and 14.0â¯kV/mm, respectively. The recoverable energy storage density and efficiency of the composite vary less than 2.5% from 25â¯Â°C to 125â¯Â°C, which indicates temperature-insensitive energy storage performance. These results are discussed based on the ZnO-enhanced bulk resistivity and the ZnO-induced local electric field which suppresses the evolution of polar nanoregions.
Related Topics
Physical Sciences and Engineering
Materials Science
Ceramics and Composites
Authors
Chun-Wei Tao, Xiao-Yu Geng, Ji Zhang, Rui-Xue Wang, Zheng-Bin Gu, Shan-Tao Zhang,