TY - JOUR
T1 - Superior High-Temperature Energy Storage Performance in All-Organic Composite Dielectrics Achieved by Synergistic Regulation of Free Volume and Charge Distribution
AU - Liu, Jianjun
AU - Liu, Yang
AU - Liu, Tao
AU - Zhao, Weichen
AU - Han, Ying
AU - Wang, Yifei
AU - Zhou, Tao
AU - Zhou, Yao
AU - Liu, Wenfeng
AU - Zhou, Di
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/10/9
Y1 - 2025/10/9
N2 - Developing polymer dielectrics with stable high-temperature energy storage performance remains a pivotal challenge for next-generation electrical systems. However, the exponentially increasing conduction loss at elevated temperatures results in a decline in both energy storage density and efficiency. Herein, a cross-scale synergistic regulation strategy that integrates mesoscale free volume and molecular-scale charge trap, effectively addressing the issue of free volume collapse and space charge accumulation under thermal-electric coupling stress is proposed. By blending polyimide with polyetherimide and introducing a low-cost n-type organic semiconductor, 1,4,5,8-naphthalenetetracarboxylic dianhydride, the resulting single-layer composite achieved a discharge energy density (Ud) of 5.01 J cm−3 with a charge–discharge efficiency (η) close to 90% under 500 MV m−1 at 150 °C. Additionally, multi-layer gradient architecture is employed to further enhance the high-temperature energy storage properties of the composites. Ultimately, the resultant 0.5-2.0-0.5 three-layer composite demonstrates a Ud of 6.95 J cm−3 at 150 °C with a η of 84.5%. Even under 200 °C, 0.5-2.0-0.5 delivers a Ud of 3.24 J cm−3 with a η of 90.1%. This research presents a novel strategy for enhancing the energy storage performance of all-organic polymer dielectrics under high-temperature conditions.
AB - Developing polymer dielectrics with stable high-temperature energy storage performance remains a pivotal challenge for next-generation electrical systems. However, the exponentially increasing conduction loss at elevated temperatures results in a decline in both energy storage density and efficiency. Herein, a cross-scale synergistic regulation strategy that integrates mesoscale free volume and molecular-scale charge trap, effectively addressing the issue of free volume collapse and space charge accumulation under thermal-electric coupling stress is proposed. By blending polyimide with polyetherimide and introducing a low-cost n-type organic semiconductor, 1,4,5,8-naphthalenetetracarboxylic dianhydride, the resulting single-layer composite achieved a discharge energy density (Ud) of 5.01 J cm−3 with a charge–discharge efficiency (η) close to 90% under 500 MV m−1 at 150 °C. Additionally, multi-layer gradient architecture is employed to further enhance the high-temperature energy storage properties of the composites. Ultimately, the resultant 0.5-2.0-0.5 three-layer composite demonstrates a Ud of 6.95 J cm−3 at 150 °C with a η of 84.5%. Even under 200 °C, 0.5-2.0-0.5 delivers a Ud of 3.24 J cm−3 with a η of 90.1%. This research presents a novel strategy for enhancing the energy storage performance of all-organic polymer dielectrics under high-temperature conditions.
KW - all-organic composite dielectrics
KW - charge trap
KW - dielectric capacitors
KW - energy storage
KW - free volume
UR - https://www.scopus.com/pages/publications/105014606011
U2 - 10.1002/smll.202507631
DO - 10.1002/smll.202507631
M3 - 文章
C2 - 40878404
AN - SCOPUS:105014606011
SN - 1613-6810
VL - 21
JO - Small
JF - Small
IS - 40
M1 - e07631
ER -