摘要
The growing demand for compact, high-power electronics in electric vehicles, renewable energy converters, and other harsh-environment platforms calls for dielectric films that can simultaneously deliver high energy density and high efficiency at elevated temperatures. However, the operating temperature ceiling of state-of-the-art BOPP films makes it difficult to satisfy the related requirements, motivating the exploration of alternative high-temperature polymer dielectrics. In this work, epoxy dielectric films are developed through a stepwise molecular design strategy that systematically balances thermal capability, polarization response, and high-field loss. A sulfone-containing curing agent is first introduced to improve high-temperature efficiency while maintaining strong polarization. Resin functionality is then tuned via progressive substitution with a tetrafunctional epoxy to extend the operating temperature window, revealing that high-field loss behavior, rather than Tg alone, governs efficiency at elevated temperatures. Finally, a small fraction of hydrogenated epoxy is incorporated to disrupt loss-active microstructural organization and concurrently suppress dielectric loss and leakage current. The final optimized film achieves 4.3 J/cm3 at 200 °C with efficiency above 90%. This study establishes a stepwise design framework that links molecular tuning to comprehensive performance, offering guidance for high-temperature dielectric energy storage films.
| 源语言 | 英语 |
|---|---|
| 页(从-至) | 8224-8235 |
| 页数 | 12 |
| 期刊 | Langmuir |
| 卷 | 42 |
| 期 | 11 |
| DOI | |
| 出版状态 | 已出版 - 24 3月 2026 |
联合国可持续发展目标
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