电磁隐身天线用核壳结构三元纳米纤维的设计

IF 17.2 1区 工程技术 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Xiangwei Meng, Meijie Yu, Chengguo Wang
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引用次数: 0

摘要

在信息时代,开发兼具电磁隐身和高效输电的天线具有重要意义。因此,从多组分复合和微形貌工程的角度出发,通过静电纺丝及后续碳化制备Ni/C@ZrO2三元纳米纤维。合理的元器件选择和精致的微结构,充分发挥协同效应,同时实现完美的阻抗匹配和优越的衰减能力。准确地说,与碳纳米纤维和二元纳米纤维相比,Ni/C@ZrO2在11.0 GHz处的反射损耗最小值为- 60.1 dB,在3.3 mm处的超宽带宽高达7.6 GHz,在大多数观测角度下的雷达截面值小于- 20 dBm2。设计了一种以Ni/C@ZrO2为介电基板的贴片天线,并显示出高效的传输效率,这意味着隐身信息传输设备的研究在理论上是可行的,与其他候选吸收材料相比,增强了竞争力。因此,本研究成功制备了一种高性能的电磁波吸收剂,为纤维功能材料的未来发展指明了方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Design of Ternary Nanofibers with Core–Shell Structure for Electromagnetic Stealthy Antenna

The exploitation of antennas with both electromagnetic stealth and efficient power transmission is of great significance in the information age. Therefore, from the perspective of multi-component composite and microtopography engineering, Ni/C@ZrO2 ternary nanofibers are synthesized through electrospinning and subsequent carbonization. Profiting from the reasonable selection of components and exquisite micro-structure, the synergistic effect is fully developed, with the simultaneous achievement of perfect impedance matching and superior attenuation capacity. Precisely speaking, compared with carbon nanofibers and binary nanofibers, Ni/C@ZrO2 exhibits the minimum reflection loss values of − 60.1 dB at 11.0 GHz, an ultrawide bandwidth up to 7.6 GHz at 3.3 mm, and radar cross-section values less than − 20 dBm2 at most observation angles. A patch antenna with Ni/C@ZrO2 acted as dielectric substrate is designed and displays efficient transmission efficiency, which means the theoretical feasibility of research on stealthy information transmission equipment, and enhances the competitiveness in comparison with other absorbent candidates. Hence, this study successfully prepares a high-performance electromagnetic wave absorbent, and sheds light on the future development of fibrous functional materials.

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来源期刊
CiteScore
18.70
自引率
11.20%
发文量
109
期刊介绍: Advanced Fiber Materials is a hybrid, peer-reviewed, international and interdisciplinary research journal which aims to publish the most important papers in fibers and fiber-related devices as well as their applications.Indexed by SCIE, EI, Scopus et al. Publishing on fiber or fiber-related materials, technology, engineering and application.
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