TY - JOUR
T1 - Enhancement of energy storage performance in BNT-based energy ceramics via polar nanoregions induced by doping (Al0.5Ta0.5)4+ composite particles
AU - Zhang, Zhuo
AU - Li, Qiang
AU - Zheng, Shiqi
AU - Chen, Xinghong
AU - Yang, Ning
AU - Yang, Zhenhai
AU - Shang, Keyang
AU - Fan, Huiqing
AU - Wang, Weijia
N1 - Publisher Copyright:
© 2025 Elsevier Ltd and Techna Group S.r.l.
PY - 2025/5
Y1 - 2025/5
N2 - The ultrafast charge/discharge rate and environmentally friendly properties of dielectric ceramics have garnered significant attention; however, their limited energy storage density remains a key challenge for broader application. In this study, Bi0.35Na0.35Ba0.09Sr0.21Ti(1-x)(Al0.5Ta0.5)xO3 (BNBST-100xAT) relaxor ferroelectric ceramics were synthesized using a conventional solid-state reaction method. The microstructure, energy storage properties, and cyclic fatigue performance were systematically evaluated as a function of the (Al0.5Ta0.5)4+ (AT) complex ion doping concentration. Results revealed that AT complex ion doping reduced the symmetry of the BNBST ceramics, disrupted long-range ferroelectric order, and enhanced relaxor behavior, leading to thinner hysteresis loops. Notably, the BNBST-4AT ceramic exhibited a recoverable energy density (Wrec) of 1.312 J/cm³ and an energy efficiency (η) of 81.37 % under an applied field of 140 kV/cm, along with excellent cycling stability. These findings demonstrate that BNBST-100xAT ceramics hold great potential as a lead-free material for advanced energy storage applications.
AB - The ultrafast charge/discharge rate and environmentally friendly properties of dielectric ceramics have garnered significant attention; however, their limited energy storage density remains a key challenge for broader application. In this study, Bi0.35Na0.35Ba0.09Sr0.21Ti(1-x)(Al0.5Ta0.5)xO3 (BNBST-100xAT) relaxor ferroelectric ceramics were synthesized using a conventional solid-state reaction method. The microstructure, energy storage properties, and cyclic fatigue performance were systematically evaluated as a function of the (Al0.5Ta0.5)4+ (AT) complex ion doping concentration. Results revealed that AT complex ion doping reduced the symmetry of the BNBST ceramics, disrupted long-range ferroelectric order, and enhanced relaxor behavior, leading to thinner hysteresis loops. Notably, the BNBST-4AT ceramic exhibited a recoverable energy density (Wrec) of 1.312 J/cm³ and an energy efficiency (η) of 81.37 % under an applied field of 140 kV/cm, along with excellent cycling stability. These findings demonstrate that BNBST-100xAT ceramics hold great potential as a lead-free material for advanced energy storage applications.
KW - Complex ions
KW - Cycle fatigue
KW - Energy storage
KW - Relaxor ferroelectric ceramic
UR - http://www.scopus.com/inward/record.url?scp=105002488718&partnerID=8YFLogxK
U2 - 10.1016/j.ceramint.2025.01.288
DO - 10.1016/j.ceramint.2025.01.288
M3 - 文章
AN - SCOPUS:105002488718
SN - 0272-8842
VL - 51
SP - 14501
EP - 14510
JO - Ceramics International
JF - Ceramics International
IS - 11
ER -