材料科学
纳米复合材料
电介质
聚合物
储能
焦耳加热
聚合物纳米复合材料
导电体
热导率
热传导
复合材料
导电聚合物
纳米技术
化学工程
电容感应
泄漏(经济)
热稳定性
碳纳米管
共价有机骨架
共价键
复合数
聚醚酰亚胺
超级电容器
热的
热能储存
介电强度
作者
Xi Zhang,Xi Zhang,Xi Chen,Yì Wáng,Hao Ren,Shuxuan Li,Xin Zhen,B Ghelich Li,Xin Zhang,Xin Zhang,Ce‐Wen Nan
摘要
ABSTRACT Dielectric polymers for high‐temperature capacitive energy storage are often limited by low thermal conductivity and resulting Joule heat accumulation. Although high‐thermal‐conductivity inorganic fillers have been introduced, their poor interfacial compatibility with organic matrices restricts overall performance improvement. Here, we develop an all‐organic nanocomposite by integrating two‐dimensional (2D) covalent organic framework nanosheets (COF‐NS) into a polyetherimide (PEI) matrix. The COF‑NS exhibits high intrinsic thermal conductivity and forms strong interfacial interactions with PEI via B─O coordination bonds. Multi‑scale simulations combining molecular dynamics and phase‑field modeling confirm that the organic similarity between COF‑NS and PEI ensures effective phonon matching and minimizes interfacial thermal resistance, significantly enhancing thermal conduction through efficient in‑plane heat dissipation pathways. Additionally, the wide bandgap of COF‑NS introduces charge traps that suppress leakage current, while the robust interface enhances mechanical strength, and the 2D morphology inhibits electrical treeing. These combined effects significantly improve the breakdown strength and energy storage performance at high temperatures. The resulting PEI/COF‑NS composite achieves a high energy density of 5.89 J cm −3 at 200°C, with an efficiency above 90%, outperforming most reported polymer dielectrics. This work underscores the significant potential of organic 2D materials in developing high‑temperature dielectric polymers for advanced electronic and electrical systems.
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