Yu Wenjing, Shao Gaofeng
School of Mathematics and Physics, Jiangsu University of Technology, Changzhou 213001, China.
School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing 210044, China.
J Colloid Interface Sci. 2023 Jun 15;640:680-687. doi: 10.1016/j.jcis.2023.02.140. Epub 2023 Mar 2.
Graphene with abundant defects has been considered as the most lightweight electromagnetic functional materials. Although important, the dominant electromagnetic response of defective graphene with diverse morphologies is rarely the focus of existing research. Herein, the defective graphene with two-dimensional planar structure (2D-ps) and three-dimensional continuous network (3D-cn) morphologies were dexterously designed with 2D mixing and 3D filled systems of polymeric matrix. A comparison between the topologies of defective graphene-based nanofillers and the microwave attenuation behaviors was examined. Defective graphene with 3D-cn morphology can achieve ultralow filling content and broadband absorption, which is attributed to the presence of numerous pore structures that promote impedance matching, induce continuous conduction loss and provide multiple reflection and scattering sites for electromagnetic wave attenuation. Comparatively, by virtue of the increased filling content of 2D-ps, the dielectric losses primarily originate from the dielectric genes, including aggregation-induced-charge transport, abundant defect and dipole polarization, resulting in good microwave absorption at low thickness and low frequency. Therefore, this work provides a pioneering insight into morphology engineering of defective graphene microwave absorbers, and it will guide future exploration of customizing high-performance microwave absorption materials based on graphene-based low-dimensional building blocks.
具有大量缺陷的石墨烯被认为是最轻的电磁功能材料。尽管很重要,但具有多种形态的缺陷石墨烯的主要电磁响应很少成为现有研究的重点。在此,通过聚合物基体的二维混合和三维填充系统,巧妙设计了具有二维平面结构(2D-ps)和三维连续网络(3D-cn)形态的缺陷石墨烯。研究了基于缺陷石墨烯的纳米填料拓扑结构与微波衰减行为之间的比较。具有3D-cn形态的缺陷石墨烯可以实现超低填充量和宽带吸收,这归因于存在大量促进阻抗匹配、诱导连续传导损耗并为电磁波衰减提供多个反射和散射位点的孔隙结构。相比之下,由于2D-ps填充量的增加,介电损耗主要源于介电基因,包括聚集诱导电荷传输、大量缺陷和偶极极化,从而在低厚度和低频下实现良好的微波吸收。因此,这项工作为缺陷石墨烯微波吸收体的形态工程提供了开创性的见解,并将指导未来基于石墨烯基低维构建块定制高性能微波吸收材料的探索。