Zuo Peiyuan, Jiang Junhao, Chen Donglin, Lin Jingyu, Zhao Zhanpeng, Sun Bowen, Zhuang Qixin
Key Laboratory of Specially Functional Polymeric Materials and Related Technology (Ministry of Education), School of Materials Science and Engineering, East China University of Science and Technology, Shanghai 200237, China.
ACS Appl Mater Interfaces. 2023 May 17;15(19):23792-23803. doi: 10.1021/acsami.3c03319. Epub 2023 May 2.
Polyimide (PI) and its derivative polyetherimide (PEI) have been widely investigated as promising candidates for dielectric energy storage due to their excellent intrinsic features. However, most of the current research for PI- or PEI-based dielectric nanocomposites only focuses on a certain polar group contained in a dianhydride monomer, while there are very few studies on exploring the effect of a series of polar groups derived from various dianhydride monomers on the dielectric properties of nanocomposites. To fill this gap, we herein fabricated and investigated a series of novel hyperbranched polyimides grafted on barium titanate nanoparticles (HBPI@BT) using different dianhydride monomers and their nanocomposites with the PEI matrix. The results showed that sophisticated hyperbranched structures effectively alleviated the incompatibility between fillers and the matrix, thus significantly improving the bonding energy of nanocomposites, especially for HBPI-S@BT/PEI (797.7 kJ/mol). The of HBPI-S@BT/PEI reached 8.38 J/cm, which is 3.3 times higher than that of pure PEI. The HBPI-F@BT/PEI nanocomposites achieved high breakdown strength (∼500 MV/m) and low dielectric loss (0.008) simultaneously. The dielectric constants of HBPI@BT/PEI nanocomposites remained at a stable level from 25 to 150 °C. This work provides us promising hyperbranched structured materials for potentially advanced dielectric applications such as field effect transistors.
聚酰亚胺(PI)及其衍生物聚醚酰亚胺(PEI)因其优异的固有特性,作为有前景的介电储能候选材料受到了广泛研究。然而,目前大多数关于基于PI或PEI的介电纳米复合材料的研究仅聚焦于二酐单体中所含的某一种极性基团,而对于探索源自各种二酐单体的一系列极性基团对纳米复合材料介电性能的影响的研究却非常少。为了填补这一空白,我们在此制备并研究了一系列使用不同二酐单体接枝在钛酸钡纳米颗粒上的新型超支化聚酰亚胺(HBPI@BT)及其与PEI基体的纳米复合材料。结果表明,复杂的超支化结构有效缓解了填料与基体之间的不相容性,从而显著提高了纳米复合材料的结合能,尤其是对于HBPI-S@BT/PEI(797.7 kJ/mol)。HBPI-S@BT/PEI的储能密度达到8.38 J/cm³,是纯PEI的3.3倍。HBPI-F@BT/PEI纳米复合材料同时实现了高击穿强度(约500 MV/m)和低介电损耗(0.008)。HBPI@BT/PEI纳米复合材料的介电常数在25至150°C范围内保持稳定。这项工作为我们提供了有前景的超支化结构材料,可用于诸如场效应晶体管等潜在的先进介电应用。