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Improved energy storage performances of lead-free BiFeO3-based ceramics via doping Sr0.7La0.2TiO3.

Authors :
Zhao, Jinghao
Bao, Sihan
Tang, Luomeng
Shen, Yihao
Su, Zhen
Yang, Fan
Liu, Jinjun
Pan, Zhongbin
Source :
Journal of Alloys & Compounds. Mar2022, Vol. 898, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

• A superior discharged energy density of ~ 2.55 J/cm3 and efficiency of ~ 92% values is realized in (BFO-BST)− 0.3SLT ceramic. • The (BFO-BST)-0.3SLT ceramic exhibits impressive temperature stability, fatigue endurance, and frequency stability. • The (BFO-BST)-0.3SLT ceramic shows a high power density (28.11 MW/cm3) and an ultrafast discharge rate (0.0266 μs). Substantial attention for dielectric ceramic capacitors toward lead-free has been driven by the enhanced awareness of environmental protection. However, the unsatisfying breakdown strength (E b) and comparatively low efficiency (η) becomes an obstacle for their widespread application. Here, environment-friendly lead-free relaxor ferroelectric (1-x) (0.67BiFeO 3 -0.33Ba 0.8 Sr 0.2 TiO 3) -xSr 0.7 La 0.2 TiO 3 + 0.1 wt% MnO 2 (BFO-BST-SLT) ceramic is reported as an efficient route to possess excellent E b and high η simultaneously. The doping of SLT can significantly suppress the grain growth, improve the relaxation behavior, and thus increasing the E b and η of the ceramics. Consequently, the corresponding ceramics with x = 0.3 achieves good discharged energy density of ~2.55 J/cm3 and ultrahigh η of ~92%. Notably, it presents outstanding charging/discharging performances with fast charging/discharging time (~0.0266 μs), power density (~28.11 MW/cm3) along with current density (~468.5 A/cm2). Together with great temperature stability, frequency stability and cycle stability, this contributes provides a crucial way to prepare lead-free dielectrics for next-generation pulsed power capacitor applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09258388
Volume :
898
Database :
Academic Search Index
Journal :
Journal of Alloys & Compounds
Publication Type :
Academic Journal
Accession number :
154558936
Full Text :
https://doi.org/10.1016/j.jallcom.2021.162795