Laboratory of Advanced Materials, Department of Materials Science, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Fudan University, 220 Handan Road, Shanghai 200433, China.
Nanoscale. 2019 Nov 28;11(46):22539-22549. doi: 10.1039/c9nr07895a.
Dielectric composites constructed using carbon and metal oxides have become a hot research topic; however, the strategy to strengthen the coupling of components still needs to be optimized to enhance dielectric loss. Herein, ultra-fine ZnO derived from ZIF-8 was uniformly distributed and tightly embedded in multi-wall carbon nanotubes (C-ZnO@CNTs) via a novel confined space synthesis. Due to the presence of a polypyrrole coating, ZnO nanocrystals could be formed in the space of the original polyhedron and inserted into the CNTs, promoting the generation of polarized CNTs and providing abundant polarization centers on the CNTs. The composites exhibited superior microwave absorption capacity with a reflection loss value of up to -48.2 dB at 6.0 GHz, and the effective bandwidth reached 14.9 GHz by adjusting their thickness. According to the geometric phase analysis, the strain driven by the tight-coupling between ZnO-CNTs was confirmed to exist in the interfaces, boosting their inherent electromagnetic properties. The improved dielectric loss was caused by the strong interfacial polarization among ZnO-ZnO or ZnO-CNTs and the conductive loss among intertwined CNTs network, as revealed by electron holography. Therefore, the overall electrical properties could be improved by the polarized C-ZnO@CNTs with high electron conductivity. The confined space strategy may have promising potential for the synthesis of new composites of polarized carbon materials tightly coupled with metal oxides nanocrystals.
采用碳和金属氧化物构建的介电复合材料已成为热门研究课题;然而,为了增强组件的耦合,仍需要优化强化策略以提高介电损耗。在此,通过新颖的受限空间合成,超精细的 ZIF-8 衍生 ZnO 均匀分布并紧密嵌入多壁碳纳米管(C-ZnO@CNTs)中。由于存在聚吡咯涂层,ZnO 纳米晶体可以在原始多面体的空间中形成并插入 CNTs 中,从而促进极化 CNT 的产生并在 CNTs 上提供丰富的极化中心。复合材料表现出优异的微波吸收能力,在 6.0 GHz 时反射损耗值高达-48.2 dB,通过调整其厚度,有效带宽达到 14.9 GHz。根据几何相位分析,证实了 ZnO-CNTs 之间紧密耦合产生的应变存在于界面中,从而提高了它们的固有电磁特性。介电损耗的提高是由于 ZnO-ZnO 或 ZnO-CNTs 之间的强界面极化以及交织 CNT 网络之间的导电损耗引起的,这一点通过电子全息术得到了证实。因此,具有高导电性的极化 C-ZnO@CNTs 可以改善整体电性能。受限空间策略可能为紧密耦合金属氧化物纳米晶体的极化碳材料的新型复合材料的合成提供有前景的潜力。