TY - JOUR
T1 - A highly polarizable concentrated dipole glass for ultrahigh energy storage
AU - Fu, Jian
AU - Xie, Aiwen
AU - Zuo, Ruzhong
AU - Liu, Yiqian
AU - Qi, He
AU - Wang, Zongqian
AU - Feng, Quan
AU - Guo, Jinming
AU - Zeng, Kun
AU - Chen, Xuefeng
AU - Fu, Zhengqian
AU - Zhang, Yifan
AU - Jiang, Xuewen
AU - Li, Tianyu
AU - Zhang, Shujun
AU - Lin, Yuan-Hua
AU - Nan, Ce-Wen
PY - 2024
Y1 - 2024
N2 - Relaxor ferroelectrics are highly desired for pulse-power dielectric capacitors, however it has become a bottleneck that substantial enhancements of energy density generally sacrifice energy efficiency under superhigh fields. Here, we demonstrate a novel concept of highly polarizable concentrated dipole glass in delicately-designed high-entropy (Bi1/3Ba1/3Na1/3)(Fe2/9Ti5/9Nb2/9)O3 ceramic achieved via substitution of multiple heterovalent ferroelectric-active principal cation species on equivalent lattice sites. The atomic-scaled polar heterogeneity of dipoles with different polar vectors between adjacent unit cells enables diffuse reorientation process but disables appreciable growth with electric fields. These unique features cause superior recoverable energy density of ~15.9 J cm−3 and efficiency of ~93.3% in bulk ceramics. We also extend the highly polarizable concentrated dipole glass to the prototype multilayer ceramic capacitor, which exhibits record-breaking recoverable energy density of ~26.3 J cm−3 and efficiency of ~92.4% with excellent temperature and cycle stability. This research presents a distinctive approach for designing high-performance energy-storage dielectric capacitors. © The Author(s) 2024.
AB - Relaxor ferroelectrics are highly desired for pulse-power dielectric capacitors, however it has become a bottleneck that substantial enhancements of energy density generally sacrifice energy efficiency under superhigh fields. Here, we demonstrate a novel concept of highly polarizable concentrated dipole glass in delicately-designed high-entropy (Bi1/3Ba1/3Na1/3)(Fe2/9Ti5/9Nb2/9)O3 ceramic achieved via substitution of multiple heterovalent ferroelectric-active principal cation species on equivalent lattice sites. The atomic-scaled polar heterogeneity of dipoles with different polar vectors between adjacent unit cells enables diffuse reorientation process but disables appreciable growth with electric fields. These unique features cause superior recoverable energy density of ~15.9 J cm−3 and efficiency of ~93.3% in bulk ceramics. We also extend the highly polarizable concentrated dipole glass to the prototype multilayer ceramic capacitor, which exhibits record-breaking recoverable energy density of ~26.3 J cm−3 and efficiency of ~92.4% with excellent temperature and cycle stability. This research presents a distinctive approach for designing high-performance energy-storage dielectric capacitors. © The Author(s) 2024.
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U2 - 10.1038/s41467-024-51766-z
DO - 10.1038/s41467-024-51766-z
M3 - RGC 21 - Publication in refereed journal
C2 - 39187489
SN - 2041-1723
VL - 15
JO - Nature Communications
JF - Nature Communications
M1 - 7338
ER -