4.6 Article

Fine-grain induced outstanding energy storage performance in novel Bi0.5K0.5TiO3-Ba(Mg1/3Nb2/3)O3 ceramics via a hot-pressing strategy

Journal

JOURNAL OF MATERIALS CHEMISTRY C
Volume 7, Issue 39, Pages 12127-12138

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9tc04320a

Keywords

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Funding

  1. National Natural Science Foundation of China [51772211, 51502001, 51872001]
  2. Open Research Fund Program of the State Key Laboratory of Low-Dimensional Quantum Physics [KF201803]
  3. Ministry of Science and Technology of the People's Republic of China through the 973-Project [2015CB654601]
  4. Anhui University [S020118002/098]

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Currently, bismuth-based perovskite-type ceramics are considered as promising species in energy storage applications because of easy phase- and micro/macro-structure modulations and high performances. In this work, the composition dependent phase structure and ferroelectric properties of novel Bi0.5K0.5TiO3-Ba(Mg1/3Nb2/3)O-3 (BKT-BMN) ceramics are studied. Relaxor properties are gradually enhanced with increasing BMN content. The BKT-0.15BMN composition is selected to further explore energy storage performance via the hot-pressing (HP) technique. The results show that the recoverable energy storage density (W-R = 3.14 J cm(-3)) for the HP sample is more than two times larger than that of the conventional sintering (CS) one. The outstanding W-R also exhibits super stability against temperature and frequency variations. Besides, the energy storage efficiency (eta) is up to 83.7% for the HP sample. In particular, the stored energy can be released in a very short time of similar to 0.12 mu s at room temperature, indicating a fast discharging speed for the HP sample. The enhanced performance is due to the decrease of grain size and the increase of grain boundaries, the mechanism underlying the microstructure effect on the breakdown strength (BDS) value is disclosed by numerical simulations (COMSOL). This work not only enriches the bismuth-based ceramic systems in pulsed power applications, but also deepens the understanding of the intrinsic mechanism of a refined microstructure that boosts energy storage performance.

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