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具有三维星形结构的金属有机框架衍生的钴碳复合材料用于增强微波吸收

MOF-derived Co-C composites with 3D star structure for enhanced microwave absorption.

作者信息

Ma Qian, Qiang Rong, Shao Yulong, Yang Xiao, Xue Rui, Chen Bowen, Chen Yi, Feng Shijiang

机构信息

College of Textiles, Zhongyuan University of Technology, Zhengzhou, Henan 450007, China.

College of Textiles, Zhongyuan University of Technology, Zhengzhou, Henan 450007, China; Advanced Textile Equipment Technology Provincial and Ministerial Collaborative Innovation Center, Zhengzhou, Henan 450007, China.

出版信息

J Colloid Interface Sci. 2023 Dec;651:106-116. doi: 10.1016/j.jcis.2023.07.167. Epub 2023 Jul 29.

Abstract

The demand of microwave absorption materials (MAMs) with unique morphologies and electromagnetic (EM) balance has become necessary in recent years. Due to the ease of synthesis and tunable structure, metal-organic frameworks (MOFs) are widely used for this special MAMs. In this study, a new three-dimensional hybrid MOF is proposed that is co-doped with six equally branched star morphologies. The Co-C composite has the same six-branched morphology as that of the precursor. When the EM wave is incident, this special structure makes it easier for the EM wave to enter the material vertically due to the expansion of the incident surface, which is effective in adjusting the transmission path of the electron and the reflection and distribution of the EM wave. Because of the special morphology and magneto-dielectric synergy, the Co-C composite shows a minimum reflection loss (R) of -48.5 dB at 11.0 GHz at an absorption thickness of 3.0 mm, with a microwave absorption bandwidth (EAB) of 6.1 GHz. This research provides a practical guidance for preparing the MAMs of special star structure.

摘要

近年来,对具有独特形态和电磁(EM)平衡的微波吸收材料(MAMs)的需求变得十分必要。由于合成简便且结构可调,金属有机框架(MOFs)被广泛用于这种特殊的微波吸收材料。在本研究中,提出了一种新的三维杂化MOF,它共掺杂有六种等分支的星形形态。Co-C复合材料具有与前驱体相同的六分支形态。当电磁波入射时,这种特殊结构使电磁波由于入射表面的扩展而更容易垂直进入材料,这对于调整电子的传输路径以及电磁波的反射和分布是有效的。由于特殊的形态和磁电协同作用,Co-C复合材料在吸收厚度为3.0毫米时,在11.0吉赫兹处显示出-48.5分贝的最小反射损耗(R),微波吸收带宽(EAB)为6.1吉赫兹。本研究为制备特殊星形结构的微波吸收材料提供了实际指导。

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