TY - JOUR
T1 - Synergistic optimization of barium titanate-based ferroelectrics for enhanced energy storage performance
AU - Huang, Yunyao
AU - Yang, Yule
AU - Zhang, Leiyang
AU - Laletin, Vladimir
AU - Shur, Vladimir
AU - Jing, Ruiyi
AU - Jin, Li
N1 - Publisher Copyright:
© 2024
PY - 2024/11/25
Y1 - 2024/11/25
N2 - Barium titanate (BT) ferroelectric materials have garnered significant interest in pulse dielectric capacitor devices due to their remarkable chemical stability and exceptional electrical performance. However, their inferior energy-storage performance (ESP), characterized by inadequate breakdown strength and high energy storage loss, has hindered their further advancement in applications. To address this challenge, we adopt a synergistic optimization strategy combining composition design with chemical substitution and microstructure engineering through the viscous polymer process (VPP) to develop an eco-friendly system, denoted as (1–x)[0.65BaTiO3-0.35(Sr0.7Bi0.2)TiO3]-xBi(Mg2/3Nb1/3)O3 (abbreviated as BS-xBMN). This deliberate modification enhances polarization by leveraging the hybridization of the 6 s orbitals of Bi3+ ions with the 2p orbitals of O2− ions. By adjusting the BMN content to regulate relaxor ferroelectric characteristics and field-induced polarization, we promote the formation of polar nanoregions and microstructural heterogeneity, ultimately enhancing ESP and improving the thermal stability of the materials. In the BS-0.05BMN ceramics fabricated by the VPP, we simultaneously achieve a large recoverable ES density of 5.29 J/cm3 and a prime energy storage efficiency of 95.3% under the E-field of 520 kV/cm, along with reliable temperature applicability within 30−150 °C. These results highlight the potential of BT-based materials for energy storage and provide guidance for future research endeavors.
AB - Barium titanate (BT) ferroelectric materials have garnered significant interest in pulse dielectric capacitor devices due to their remarkable chemical stability and exceptional electrical performance. However, their inferior energy-storage performance (ESP), characterized by inadequate breakdown strength and high energy storage loss, has hindered their further advancement in applications. To address this challenge, we adopt a synergistic optimization strategy combining composition design with chemical substitution and microstructure engineering through the viscous polymer process (VPP) to develop an eco-friendly system, denoted as (1–x)[0.65BaTiO3-0.35(Sr0.7Bi0.2)TiO3]-xBi(Mg2/3Nb1/3)O3 (abbreviated as BS-xBMN). This deliberate modification enhances polarization by leveraging the hybridization of the 6 s orbitals of Bi3+ ions with the 2p orbitals of O2− ions. By adjusting the BMN content to regulate relaxor ferroelectric characteristics and field-induced polarization, we promote the formation of polar nanoregions and microstructural heterogeneity, ultimately enhancing ESP and improving the thermal stability of the materials. In the BS-0.05BMN ceramics fabricated by the VPP, we simultaneously achieve a large recoverable ES density of 5.29 J/cm3 and a prime energy storage efficiency of 95.3% under the E-field of 520 kV/cm, along with reliable temperature applicability within 30−150 °C. These results highlight the potential of BT-based materials for energy storage and provide guidance for future research endeavors.
KW - BaTiO
KW - Dielectric capacitors
KW - Energy storage performance
KW - Relaxor ferroelectric
KW - Synergistic optimization
KW - Viscous polymer process
UR - https://www.scopus.com/pages/publications/85203143621
U2 - 10.1016/j.jallcom.2024.176372
DO - 10.1016/j.jallcom.2024.176372
M3 - 文章
AN - SCOPUS:85203143621
SN - 0925-8388
VL - 1006
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 176372
ER -