Zhang Jia-Yu, Liu Xiu, Luo Fei-Yan, He Li, Li Yan-Tong, Li Jia-Le, Zhou Yuan-Lin, Sun Nan, Zhang Quan-Ping
State Key Laboratory of Environment-friendly Energy Materials, School of Materials and Chemistry, Southwest University of Science and Technology, No. 59 Qinglong Road, Mianyang 621010, China.
Phys Chem Chem Phys. 2024 Aug 28;26(34):22491-22497. doi: 10.1039/d4cp02081b.
Enhanced dielectric constant and high breakdown strength offers immense promise for excellent energy storage performance, which is of critical significance in modern electronics and power systems. However, polymer nanocomposites with traditional routes have to balance between dielectric constant and breakdown strength, hence hindering substantive increases in energy density. Herein, a sandwiched polymer nanocomposite film has been constructed to take full advantage of the individual component layers. BaTiO nanoparticles are coated with a fluoropolymer to form core-shell structures and then introduced into a polymer as the top and the bottom layers of a sandwich film for enhancing polarization. Moreover, boron nitride nanosheets (BNNSs) in the middle layer of the sandwich film exert positive effects on the inhibition of current leakage for high breakdown resistance. The breakdown strength increases from 480 MV m of the neat polymer to 580 MV m of the sandwiched film. Additionally, the film exhibits a higher dielectric constant in comparison with the neat polymer. The sandwiched film displays a superior energy density (15.75 J cm), which is about 1.9 times that of the neat polymer. This work proposes a feasible route to achieve excellent energy storage of polymer dielectrics by synergistically introducing insulating fillers and additional dipoles in a sandwiched polymer nanocomposite film.
增强的介电常数和高击穿强度为优异的储能性能带来了巨大的前景,这在现代电子和电力系统中至关重要。然而,采用传统方法制备的聚合物纳米复合材料必须在介电常数和击穿强度之间进行平衡,因此阻碍了能量密度的实质性提高。在此,构建了一种夹心聚合物纳米复合薄膜,以充分利用各个组成层的优势。将钛酸钡纳米颗粒用含氟聚合物包覆形成核壳结构,然后作为夹心薄膜的顶层和底层引入聚合物中以增强极化。此外,夹心薄膜中间层的氮化硼纳米片(BNNSs)对抑制电流泄漏以实现高击穿电阻具有积极作用。击穿强度从纯聚合物的480 MV/m提高到夹心薄膜的580 MV/m。此外,与纯聚合物相比,该薄膜表现出更高的介电常数。夹心薄膜显示出优异的能量密度(15.75 J/cm³),约为纯聚合物的1.9倍。这项工作提出了一种可行的途径,通过在夹心聚合物纳米复合薄膜中协同引入绝缘填料和额外的偶极子来实现聚合物电介质的优异储能。