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金属有机框架材料中多核壳结构的可控形成用于高效微波吸收

Controlled formation of multiple core-shell structures in metal-organic frame materials for efficient microwave absorption.

作者信息

Jiang Rui, Wang Yiqun, Wang Jiayao, He Qinchuan, Wu Guanglei

机构信息

College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology, Chengdu, Sichuan 610059, China.

College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology, Chengdu, Sichuan 610059, China.

出版信息

J Colloid Interface Sci. 2023 Oct 15;648:25-36. doi: 10.1016/j.jcis.2023.05.197. Epub 2023 Jun 5.

DOI:10.1016/j.jcis.2023.05.197
PMID:37295367
Abstract

The design of metal-organic frameworks (MOF) derived composites with multiple loss mechanisms and multi-scale micro/nano structures is an important research direction of microwave absorbing materials. Herein, multi-scale bayberry-like Ni-MOF@N-doped carbon composites (Ni-MOF@NC) are obtained by a MOF assisted strategy. By utilizing the special structure of MOF and regulating its composition, the effective improvement of Ni-MOF@NC's microwave absorption performance has been achieved. The nanostructure on the surface of core-shell Ni-MOF@NC can be regulated and N doping on carbon skeleton by adjusting the annealing temperature. The optimal reflection loss of Ni-MOF@NC is -69.6 dB at 3 mm, and the widest effective absorption bandwidth is 6.8 GHz. This excellent performance can be attributed to the strong interface polarization caused by multiple core-shell structures, the defect and dipole polarization caused by N doping, and the magnetic loss caused by Ni. Meanwhile, the coupling of magnetic and dielectric properties enhances the impedance matching of Ni-MOF@NC. The work proposes a particular idea of designing and synthesizing an applicable microwave absorption material that possesses excellent microwave absorption performance and promising application potential.

摘要

设计具有多种损耗机制和多尺度微/纳结构的金属有机框架(MOF)衍生复合材料是吸波材料的一个重要研究方向。在此,通过MOF辅助策略制备了多尺度杨梅状Ni-MOF@N掺杂碳复合材料(Ni-MOF@NC)。利用MOF的特殊结构并调控其组成,有效提升了Ni-MOF@NC的吸波性能。通过调节退火温度,可以调控核壳结构Ni-MOF@NC表面的纳米结构,并实现碳骨架上的N掺杂。Ni-MOF@NC的最佳反射损耗在3 mm处为-69.6 dB,最宽有效吸收带宽为6.8 GHz。这种优异的性能可归因于多种核壳结构引起的强界面极化、N掺杂导致的缺陷和偶极极化以及Ni引起的磁损耗。同时,磁性能和介电性能的耦合增强了Ni-MOF@NC的阻抗匹配。该工作为设计和合成具有优异吸波性能及广阔应用潜力的实用型吸波材料提出了一种独特思路。

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