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具有宽带和机械可控电磁波吸收性能的疏水性碳化硅@碳纳米线泡沫

Hydrophobic SiC@C Nanowire Foam with Broad-Band and Mechanically Controlled Electromagnetic Wave Absorption.

作者信息

Cai Zhixin, Su Lei, Wang Hongjie, Niu Min, Gao Hongfei, Lu De, Li Mingzhu

机构信息

State Key Laboratory for Mechanical Behavior of Materials , Xi'an Jiaotong University , Xi'an 710049 , China.

出版信息

ACS Appl Mater Interfaces. 2020 Feb 19;12(7):8555-8562. doi: 10.1021/acsami.9b20636. Epub 2020 Feb 6.

Abstract

With the booming of modern information technology, electromagnetic wave (EMW) absorption materials are playing more and more crucial roles in applications ranging from wearable smart electronics to national defense security. However, the application of present EMW absorption materials is severely hindered by their drawbacks, such as narrow absorption bandwidth and low absorption intensity. In this work, a series of highly porous and well-interconnected SiC@C nanowire foams (SCNFs) are rationally designed to exhibit modified impedance match and multiscale EMW energy dissipation mechanisms. The SCNF with a density of 108 mg cm realizes a broad absorption bandwidth covering the whole X and Ku bands with an intensity of -52.5 dB. The SCNF with a density of 36 mg cm and a thickness of 9.6 mm exhibits a mechanically controlled absorption band ranging from 2.9 to 18 GHz (covering over 93% of the entire radar band, 2-18 GHz) with a minimum intensity of -46 dB by simply applying a reversible compressive strain from 0 to 66.7%. Moreover, the special microstructure of SCNF also endows it with excellent hydrophobicity, which enables its good self-cleaning property. These encouraging achievements pave the way to the development of the continuous network microstructure of absorbents with a broad-band and tunable EMW absorption property.

摘要

随着现代信息技术的蓬勃发展,电磁波(EMW)吸收材料在从可穿戴智能电子设备到国防安全等各种应用中发挥着越来越关键的作用。然而,目前的EMW吸收材料的应用因其诸如吸收带宽窄和吸收强度低等缺点而受到严重阻碍。在这项工作中,一系列高度多孔且相互连通良好的碳化硅@碳纳米线泡沫(SCNFs)被合理设计,以展现出改进的阻抗匹配和多尺度EMW能量耗散机制。密度为108毫克/立方厘米的SCNF实现了覆盖整个X和Ku波段的宽吸收带宽,吸收强度为-52.5分贝。密度为36毫克/立方厘米且厚度为9.6毫米的SCNF通过简单地施加从0到66.7%的可逆压缩应变,展现出一个从2.9到18吉赫兹的机械可控吸收带(覆盖整个雷达波段2 - 18吉赫兹的93%以上),最小吸收强度为-46分贝。此外,SCNF的特殊微观结构还赋予其优异的疏水性,使其具有良好的自清洁性能。这些令人鼓舞的成果为开发具有宽带和可调谐EMW吸收性能的吸收剂连续网络微观结构铺平了道路。

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