TY - JOUR
T1 - High-Temperature Fluorinated Polyimide Dielectric Captative Energy Storage Enabled by Domain-Engineered KNbO3-SrTiO3@Al2O3 Nanofillers
AU - Su, Yao
AU - Jia, Yuxin
AU - Yang, Xin
AU - Zhu, Shuwen
AU - Fan, Yongbo
AU - Wang, Weijia
AU - Fan, Huiqing
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/12/1
Y1 - 2025/12/1
N2 - Polymer dielectrics exhibit remarkable advantages, including high power density, elevated operating voltage, and excellent processability. In dielectric films, the ferroelectric domain architecture and its flipping dynamics are pivotal for energy storage, as they govern electric displacement and charge–discharge efficiency. A widely adopted strategy to enhance polarization involves incorporating ferroelectric ceramics into the polymer matrix. However, this approach inevitably induces higher dielectric loss and compromises charge–discharge efficiency. Here a ferroelectric-paraelectric KNbO3-SrTiO3 nanofillers is introduced that effectively suppress ferroelectric domain volume, mitigate hysteresis, and reduces remnant polarization. Phase-field simulations corroborate that domain polarization undergoes more facile reversal, substantially minimizing dielectric loss while preserving high polarization. To further enhance the breakdown strength (Eb), the KNbO3-SrTiO3 filler is encapsulated with an Al2O3 coating. Consequently, the KNbO3-0.2 SrTiO3@Al2O3/FPI nanocomposite film achieves outstanding dielectric capacitor performance, featuring an impressive energy storage density of 6.09 J cm−3, a higher displacement difference (Dmax-Dr) of 2.08 µC cm−3, and an Eb of 611 MV m−1 at 150 °C under 100 Hz. This work presents a forward-thinking strategy for the scalable industrial production and deployment of high-performance dielectric capacitors.
AB - Polymer dielectrics exhibit remarkable advantages, including high power density, elevated operating voltage, and excellent processability. In dielectric films, the ferroelectric domain architecture and its flipping dynamics are pivotal for energy storage, as they govern electric displacement and charge–discharge efficiency. A widely adopted strategy to enhance polarization involves incorporating ferroelectric ceramics into the polymer matrix. However, this approach inevitably induces higher dielectric loss and compromises charge–discharge efficiency. Here a ferroelectric-paraelectric KNbO3-SrTiO3 nanofillers is introduced that effectively suppress ferroelectric domain volume, mitigate hysteresis, and reduces remnant polarization. Phase-field simulations corroborate that domain polarization undergoes more facile reversal, substantially minimizing dielectric loss while preserving high polarization. To further enhance the breakdown strength (Eb), the KNbO3-SrTiO3 filler is encapsulated with an Al2O3 coating. Consequently, the KNbO3-0.2 SrTiO3@Al2O3/FPI nanocomposite film achieves outstanding dielectric capacitor performance, featuring an impressive energy storage density of 6.09 J cm−3, a higher displacement difference (Dmax-Dr) of 2.08 µC cm−3, and an Eb of 611 MV m−1 at 150 °C under 100 Hz. This work presents a forward-thinking strategy for the scalable industrial production and deployment of high-performance dielectric capacitors.
KW - KNbO-SrTiO@AlO filler
KW - dielectric captative
KW - energy storage
KW - ferroelectric-paraelectric
KW - high temperature
UR - https://www.scopus.com/pages/publications/105021970234
U2 - 10.1002/smtd.202501632
DO - 10.1002/smtd.202501632
M3 - 文章
AN - SCOPUS:105021970234
SN - 2366-9608
VL - 9
JO - Small Methods
JF - Small Methods
IS - 12
M1 - e01632
ER -