TY - JOUR
T1 - Dual-Mode Strategy Based on Metal-Phenolic Networks for Charge Modulation of High-Temperature Polymer Dielectrics
AU - Zhou, Yijie
AU - Zhang, Zongwu
AU - Wang, Zixin
AU - Chen, Fang
AU - Xie, Yunchuan
AU - Ma, Xiaoyan
AU - Hou, Xiao
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/2/19
Y1 - 2026/2/19
N2 - Polymer dielectrics are attractive for high-temperature capacitors owing to their lightweight and flexibility, yet their low energy density (Ue) and high conduction losses at elevated temperatures severely constrain practical applications. Here, a dual-mode intrinsic charge regulation strategy is proposed based on a self-assembled meatal-polyphenol network (MPN-GA), formed by coordinating of gallium ions (Ga3⁺) with gallic acid (GA). This structure constructs deep-level traps via Ga3⁺ centers for carrier capture, while accumulated charges induces a reverse electric field to effectively shield further injection. This dual mechanism markedlyenhances the breakdown strength of PEI (Eb, >700 MV m−1 at 25 °C and >580 MV m−1 at 150 °C). To further suppress bulk-limited conduction loss, boron nitride nanosheets (BNNS) with a wide bandgap and high thermal stability are employed as nanocarriers for MPN-GA. The hybrid filler enables multiscale carrier modulation, achieving a discharged energy density of 7.13 J cm−3 and 90% efficiency at 150 °C, representing 3.4-fold and 9% improvements over pristine PEI. Even at 200 °C, the efficiency remains ≈90% with 4.26 J cm−3 output. This work demonstrates the potential of MPN-based intrinsic structure design for dielectric regulation and offers a scalable approach toward high-performance polymer dielectrics for next-generation energy storage.
AB - Polymer dielectrics are attractive for high-temperature capacitors owing to their lightweight and flexibility, yet their low energy density (Ue) and high conduction losses at elevated temperatures severely constrain practical applications. Here, a dual-mode intrinsic charge regulation strategy is proposed based on a self-assembled meatal-polyphenol network (MPN-GA), formed by coordinating of gallium ions (Ga3⁺) with gallic acid (GA). This structure constructs deep-level traps via Ga3⁺ centers for carrier capture, while accumulated charges induces a reverse electric field to effectively shield further injection. This dual mechanism markedlyenhances the breakdown strength of PEI (Eb, >700 MV m−1 at 25 °C and >580 MV m−1 at 150 °C). To further suppress bulk-limited conduction loss, boron nitride nanosheets (BNNS) with a wide bandgap and high thermal stability are employed as nanocarriers for MPN-GA. The hybrid filler enables multiscale carrier modulation, achieving a discharged energy density of 7.13 J cm−3 and 90% efficiency at 150 °C, representing 3.4-fold and 9% improvements over pristine PEI. Even at 200 °C, the efficiency remains ≈90% with 4.26 J cm−3 output. This work demonstrates the potential of MPN-based intrinsic structure design for dielectric regulation and offers a scalable approach toward high-performance polymer dielectrics for next-generation energy storage.
KW - energy storage performance
KW - heat resistance
KW - metal–organic networks
KW - polymer dielectrics
UR - https://www.scopus.com/pages/publications/105017843082
U2 - 10.1002/adfm.202515676
DO - 10.1002/adfm.202515676
M3 - 文章
AN - SCOPUS:105017843082
SN - 1616-301X
VL - 36
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 15
M1 - e15676
ER -