Back to Search
Start Over
Ultrahigh energy storage with superfast charge-discharge capability achieved in linear dielectric ceramic.
- Source :
- Journal of Materials Science & Technology; Apr2024, Vol. 177, p59-67, 9p
- Publication Year :
- 2024
-
Abstract
- • Superior recoverable energy density of 4.9 J/cm<superscript>3</superscript> and efficiency of 95% are attained in linear dielectrics. • For the first time, microwave materials are introduced into linear dielectrics. • The x =0.005 ceramic shows excellent thermal stability and frequency stability with an ultra-fast discharge speed. Ceramic capacitors designed for energy storage demand both high energy density and efficiency. Achieving a high breakdown strength based on linear dielectrics is of utmost importance. In this study, we present the remarkable performance of densely sintered (1– x)(Ca 0.5 Sr 0.5 TiO 3)- x Ba 4 Sm 28/3 Ti 18 O 54 ceramics as energy storage materials, with a measured energy density (W rec) of 4.9 J/cm<superscript>3</superscript> and an ultra-high efficiency (η) of 95% which is almost optimal in linear dielectric that has been reported. To unravel the underlying mechanisms, we conducted a systematic investigation on the influence of adding paraelectric Ba 4 Sm 28/3 Ti 18 O 54 (BST) on both microstructure and macroscopic electrical properties of Ca 0.5 Sr 0.5 TiO 3 (CST). Notably, the addition of BST effectively reduces the grain size of CST. The conduction mechanism is primarily governed by grain boundaries, where high-density grain boundaries act as barriers to charge carrier transport due to their elevated resistivity. Moreover, the activation energy associated with grain boundaries increases with rising resistivity, implying a lower concentration of free vacancies within these regions. The increased barrier height for oxygen vacancy migration at grain boundaries compensates for the grain boundary defects, thereby resulting in enhanced breakdown strength. This characteristic offers a substantial advantage in terms of thermal and frequency stability (25–175 °C, 1–100 Hz). This work introduces a candidate material with outstanding comprehensive energy storage properties. [Display omitted] [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 10050302
- Volume :
- 177
- Database :
- Supplemental Index
- Journal :
- Journal of Materials Science & Technology
- Publication Type :
- Periodical
- Accession number :
- 174603984
- Full Text :
- https://doi.org/10.1016/j.jmst.2023.08.031