Meng Ying, Li Guang, Tang Hao, Lu Xiudong, Lu Shibin, Lu Haisheng, Ma Yuan, Xie Changzheng, Wu Yaodong, Zi Zhenfa
Universities Joint Key Laboratory of Photoelectric Detection Science and Technology in Anhui Province, Hefei Normal University, Hefei, 230601, China.
School of Materials Science and Engineering, Anhui University, Hefei, 230601, China.
Dalton Trans. 2022 Nov 21;51(45):17466-17480. doi: 10.1039/d2dt02388a.
Due to bimetallic MOFs (metal-organic frameworks) possessing diverse structure topologies and superior properties, herein, we used bimetallic ZIFs (zeolitic imidazole frameworks) of MOFs as precursors the wet chemical and calcination method to fabricate zinc-embellished Co-Zn@NPC@MWCNT nanocomposites with porous conductive carbon-based networks The abundant carbon defects, zinc evaporation, and N-atom doping resulted in the emergence of dipolar/interface polarization, which is good for dielectric loss. The high porosity and large specific surface area were instrumental in the attenuation of multiple scattering and endowed the absorber with an excellent absorption performance. With merely 15 wt% filled loading and 3.187 mm thickness, the obtained composites under the optimized carbonization temperature (800 °C) exhibited double absorption peaks: the RL (minimum reflection loss) reached -76.18 dB@12.88 GHz and -33.09 dB@7.76 GHz, respectively. Moreover, a wide absorption bandwidth can be up to 6.56 GHz (7.2-13.76 GHz) with 3.0 mm thickness, distributed in three frequency bands: 20% of the C band, 100% of the X band, and 29.3% of the Ku band. In addition, the conductive network structure of composites was also beneficial for electromagnetic (EM)-wave absorption. An easy preparation process and low cost can further promote the commercial potential of our obtained bimetallic MOF-based material as an EM-wave absorber.
由于双金属金属有机框架(MOFs)具有多样的结构拓扑和优异的性能,在此,我们使用MOFs中的双金属沸石咪唑框架(ZIFs)作为前驱体,通过湿化学和煅烧方法制备了具有多孔导电碳基网络的锌修饰的Co-Zn@NPC@MWCNT纳米复合材料。丰富的碳缺陷、锌蒸发和N原子掺杂导致了偶极/界面极化的出现,这有利于介电损耗。高孔隙率和大比表面积有助于减弱多次散射,并赋予吸收体优异的吸收性能。在仅15 wt%的填充量和3.187 mm的厚度下,在优化的碳化温度(800℃)下获得的复合材料表现出双吸收峰:最小反射损耗(RL)分别在12.88 GHz时达到-76.18 dB,在7.76 GHz时达到-33.09 dB。此外,在3.0 mm厚度下,宽吸收带宽可达6.56 GHz(7.2 - 13.76 GHz),分布在三个频段:C波段的20%、X波段的100%和Ku波段的29.3%。此外,复合材料的导电网络结构也有利于电磁波吸收。简便的制备工艺和低成本能够进一步提升我们所获得的基于双金属MOF的材料作为电磁波吸收体的商业潜力。