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通过向TiCTMXene纤维膜中添加稀有银纳米颗粒增强太赫兹屏蔽性能。

Enhanced terahertz shielding by adding rare Ag nanoparticles to TiCTMXene fiber membranes.

作者信息

Zou Qi, Shi Chaofan, Liu Bo, Liu Dejun, Cao Duo, Liu Feng, Zhang Yi, Shi Wangzhou

机构信息

Key Laboratory of Optoelectronic Material and Device, Shanghai Normal University, Shanghai 200234, People's Republic of China.

Mathematics and Science College, Shanghai Normal University, Shanghai 200234, People's Republic of China.

出版信息

Nanotechnology. 2021 Jul 22;32(41). doi: 10.1088/1361-6528/ac1296.

Abstract

Polyacrylonitrile/TiCTMXene/silver nanoparticles fiber membranes with different silver nanoparticles contents and thickness of porous structure have been successfully prepared by electrospinning. Through the measurement of terahertz time domain spectrum, the shielding effect of the fiber membrane with 1% silver nanoparticles content can reach up to 12 dB. Moreover, the thickness of the spinning fiber membranes is controlled by adjusting the spinning time, so as to better analyze the influence of the thickness of the shielding performance in terahertz band. We attribute this excellent phenomenon to porous structure of the spun fiber membrane and combination of TiCTMXene with few-layers and silver nanoparticles to increase the absorption and conductivity of the fiber membrane, thereby enhancing the shielding effect in terahertz range. Meanwhile, the prepared polyacrylonitrile/TiCTMXene/silver nanoparticles fiber membranes show good stability and little change in terahertz shielding effect after high temperature annealing. This may provide potential ideas about the development of high-performance terahertz shielding materials, which are of great significance of terahertz electromagnetic shielding.

摘要

通过静电纺丝成功制备了具有不同银纳米颗粒含量和多孔结构厚度的聚丙烯腈/TiCTMXene/银纳米颗粒纤维膜。通过太赫兹时域光谱测量,银纳米颗粒含量为1%的纤维膜屏蔽效果可达12 dB。此外,通过调节纺丝时间来控制纺丝纤维膜的厚度,以便更好地分析厚度对太赫兹频段屏蔽性能的影响。我们将这种优异的现象归因于纺丝纤维膜的多孔结构以及少层TiCTMXene与银纳米颗粒的结合,从而增加了纤维膜的吸收和导电性,进而增强了太赫兹范围内的屏蔽效果。同时,制备的聚丙烯腈/TiCTMXene/银纳米颗粒纤维膜表现出良好的稳定性,高温退火后太赫兹屏蔽效果变化很小。这可能为高性能太赫兹屏蔽材料的开发提供潜在思路,对太赫兹电磁屏蔽具有重要意义。

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