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通过喷雾干燥法制备具有多尺度磁耦合和增强极化界面的磁化MXene微球用于独特的微波吸收

Magnetized MXene Microspheres with Multiscale Magnetic Coupling and Enhanced Polarized Interfaces for Distinct Microwave Absorption via a Spray-Drying Method.

作者信息

Li Xiao, Zhang Mao, You Wenbin, Pei Ke, Zeng Qingwen, Han Qing, Li Yuesheng, Cao Hui, Liu Xianhu, Che Renchao

机构信息

Laboratory of Advanced Materials, Department of Materials Science and Collaborative Innovation Center of Chemistry for Energy Materials (iChem), Fudan University, Shanghai 200438, P. R. China.

Key Laboratory of Materials Processing and Mold, Zhengzhou University, Ministry of Education, Zhengzhou 450002, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Apr 15;12(15):18138-18147. doi: 10.1021/acsami.0c00935. Epub 2020 Apr 1.

DOI:10.1021/acsami.0c00935
PMID:32204585
Abstract

As a typical 2D (two dimensional) material, TiCT, has been used as a promising microwave absorber (MA) because of its massive interface architecture, abundant natural defects, and chemical surface functional groups. However, its single dielectric-type loss and excessive high conductivity seriously restrict the further enhancement of MA performance. Herein, we first describe a simple spray-drying routine to reshape the 2D MXene into a confined and magnetized microsphere with tightly embedded FeO nanospheres (designated as M/F), contributing to the enhanced specific interfaces and strong dielectric polarization. These FeO magnetic units are highly dispersed into the dielectric Mxene framework, leading to the optimized impedance balance and electromagnetic coordination capability. This composite way effectively exceeds the conventionally physical mixing, simple loading, and local phase separation method. Meanwhile, strong magnetic loss capability with significantly improved magnetic flux line density is achieved from microscale MXene and nanoscale FeO, confirming our 3D multiscale magnetic coupling network. Accordingly, the M/F composites hold distinct microwave absorption property with the strong reflection loss (-50.6 dB) and effective absorption bandwidth (4.67 GHz) at the thickness as thin as only 2 mm. Our encouraging strategy provides important designable implications for MXene-based functional materials and high-performance absorbers.

摘要

作为一种典型的二维材料,TiCT由于其大量的界面结构、丰富的天然缺陷和化学表面官能团,已被用作一种有前景的微波吸收剂。然而,其单一的介电型损耗和过高的电导率严重限制了微波吸收性能的进一步提高。在此,我们首先描述了一种简单的喷雾干燥程序,将二维MXene重塑为一种包含紧密嵌入FeO纳米球的受限且磁化的微球(命名为M/F),有助于增强比界面和强介电极化。这些FeO磁性单元高度分散在介电MXene框架中,从而实现了优化的阻抗平衡和电磁协调能力。这种复合方式有效地超越了传统的物理混合、简单负载和局部分相方法。同时,从微观尺度的MXene和纳米尺度的FeO实现了具有显著提高的磁通线密度的强磁损耗能力,证实了我们的三维多尺度磁耦合网络。因此,M/F复合材料具有独特的微波吸收性能,在仅2mm的厚度下具有强反射损耗(-50.6dB)和有效吸收带宽(4.67GHz)。我们令人鼓舞的策略为基于MXene的功能材料和高性能吸收剂提供了重要的可设计启示。

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