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Updated: Jul 31, 2026

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
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Engineered Interfacial Electron Barriers for Superior High-Temperature Energy Storage in All-Polymer Dielectrics
Hao Chen1, Ding Ai2, Shuangwu Huang1
1State Key Laboratory of Radio Frequency Heterogeneous Integration, College of Electronics and Information Engineering, Institute of Microelectronics (IME), Shenzhen University, Shenzhen 518060, China.
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The rapid advancement of electric vehicles, renewable energy integration, and next-generation power electronics has intensified the demand for high-performance dielectric capacitors capable of operating reliably under high temperatures and electric fields. In this study, we develop an all-polymer dielectric (APD) system with superior high-temperature capacitive performance achieved through strategically designed heterogeneous interfaces that introduce high electron barriers. These interfaces are constructed via in situ polymerization and cross-linking of a commercial bismaleimide (MIR) monomer within a fluorinated polyimide (FPI) matrix. The pronounced band structure mismatch between FPI and MIR domains generates substantial interfacial electron barriers, which effectively suppress high-temperature leakage currents while concurrently enhancing breakdown strength, charge-discharge efficiency, and energy density. The optimized FPI/MIR APD achieves outstanding discharged energy densities of 5.8 J/cm3 at 150 °C and 3.0 J/cm3 at 200 °C with high efficiency (η > 90%), as well as excellent cycling endurance (>50 000 cycles at 150 °C). Moreover, the material exhibits intrinsic self-healing capability, exceptional scalability, and large-area uniformity. The straightforward and cost-effective fabrication process further underscores its potential for scalable production of high-temperature polymer dielectrics.
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