Lyu Longfei, Wang Fenglong, Li Bin, Zhang Xue, Qiao Jing, Yang Yunfei, Liu Jiurong
School of Materials Science and Engineering, Shandong University, Jinan 250061, PR China.
School of Materials Science and Engineering, Shandong University, Jinan 250061, PR China.
J Colloid Interface Sci. 2021 Mar 15;586:613-620. doi: 10.1016/j.jcis.2020.10.129. Epub 2020 Nov 5.
Three-dimensional (3D) carbon-based materials have attracted growing attention in the field of electromagnetic wave absorption applications. However, their high conductivity results in high dielectric constant, leading to impedance mismatching, and this characteristic finally weakens their electromagnetic wave absorption performance. In this work, 3D carbon foam (3DCF) was successfully prepared by calcining the melamine foam as the carbon framework precursor under N atmosphere. Subsequently, 1T-2H MoS nanosheets were uniformly assembled on the surface of the 3DCF skeleton through a solvothermal process. The diameter of the 3DCF skeleton was about 1 μm and the thickness of the 1T-2H MoS on the surface was about 150 nm. The 3D network brings in many advantages for microwave attenuation, including numerous conductive pathways, excellent impedance matching and multi-polarization processes. The composites exhibited a maximum reflection loss (RL) of -45.88 dB at 10.2 GHz with the thickness of 2.2 mm, and the effective absorbing bandwidth (E) was as wide as 5.68 GHz, implying their superb microwave absorption behavior. This work is believed to offer a strategy for the design of efficient 3D electromagnetic wave absorbers with low density in the future.
三维(3D)碳基材料在电磁波吸收应用领域引起了越来越多的关注。然而,它们的高导电性导致高介电常数,从而导致阻抗失配,这一特性最终削弱了它们的电磁波吸收性能。在这项工作中,通过在N气氛下煅烧三聚氰胺泡沫作为碳骨架前驱体,成功制备了3D碳泡沫(3DCF)。随后,通过溶剂热法将1T-2H MoS纳米片均匀地组装在3DCF骨架表面。3DCF骨架的直径约为1μm,表面1T-2H MoS的厚度约为150nm。3D网络为微波衰减带来了许多优势,包括众多的导电路径、优异的阻抗匹配和多极化过程。该复合材料在厚度为2.2mm时,在10.2GHz处表现出-45.88dB的最大反射损耗(RL),有效吸收带宽(E)高达5.68GHz,这意味着它们具有出色的微波吸收性能。这项工作有望为未来设计低密度高效3D电磁波吸收体提供一种策略。