Wu Tong, Ren Fang, Guo Zhengzheng, Wang Jiaqi, Zong Ze, Wang Lunwu, Jin Yanling, Chen Zhengyan, Ren Penggang
School of Materials Science and Engineering, Xi'an University of Technology, Xi'an, 710048, China.
The Faculty of Printing, Packaging Engineering and Digital Media Technology, Xi'an University of Technology, Xi'an, 710048, China.
Small. 2024 Dec;20(52):e2407599. doi: 10.1002/smll.202407599. Epub 2024 Oct 31.
The proliferation of electronic devices drives the adoption of electromagnetic wave (EMW) absorbing materials to mitigate electromagnetic pollution. Metal-organic frameworks (MOFs) reveal great potential in EMW absorption field due to their unique pore structure and outstanding physicochemical properties. However, single MOFs are difficult to achieve both efficient absorption and wide frequency coverage owing to the limited electromagnetic properties and structural composition. Herein, a sandwich-like ternary MOF composite is successfully synthesized through a hierarchical assembly strategy. Following high-temperature treatment, the materials are converted into nitrogen-doped porous carbon with magnetic metals, non-magnetic metal oxides, and carbon nanotubes on the surface (labeled as TiO/C@Co/N/C@CNT). The unique sandwich structure of the resulting derivatives provides a multi-level microstructure and multi-component synergistic effects, significantly enhancing electromagnetic wave absorption capabilities and broadening the effective absorption bandwidth (EAB). At 1.8 mm matching thicknesses, the material achieves a reflection loss of -56.3 dB and a 6.6 GHz EAB. Adjusting the matching thicknesses to 2.3 and 3.1 mm extends the EAB to 6.1-18 GHz, with absorption peaks of -47.6 and -47.1 dB. This work offers a novel guidance for constructing advanced MOF-derived materials with ultra-broadband EAB and strong EMW absorption through meticulous structural design and multiple components combination.
电子设备的激增推动了电磁波(EMW)吸收材料的应用,以减轻电磁污染。金属有机框架(MOF)由于其独特的孔结构和出色的物理化学性质,在EMW吸收领域显示出巨大潜力。然而,由于电磁性能和结构组成有限,单一的MOF难以同时实现高效吸收和宽频率覆盖。在此,通过分级组装策略成功合成了一种三明治状三元MOF复合材料。经过高温处理后,材料转化为表面带有磁性金属、非磁性金属氧化物和碳纳米管的氮掺杂多孔碳(标记为TiO/C@Co/N/C@CNT)。所得衍生物独特的三明治结构提供了多层次微观结构和多组分协同效应,显著增强了电磁波吸收能力并拓宽了有效吸收带宽(EAB)。在1.8毫米匹配厚度下,该材料实现了-56.3 dB的反射损耗和6.6 GHz的EAB。将匹配厚度调整到2.3毫米和3.1毫米,EAB扩展到6.1 - 18 GHz,吸收峰分别为-47.6 dB和-47.1 dB。这项工作通过精心的结构设计和多组分组合,为构建具有超宽带EAB和强EMW吸收能力的先进MOF衍生材料提供了新的指导。