具有梯度周期结构的碳纳米线修饰Nextel 610/SiOC复合材料在高温下增强宽带电磁波吸收性能

IF 6.3 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Fan Yang , Yongpeng Dong , Yuqiu Wang , Jimei Xue , Shangwu Fan , Xiaomeng Fan , Laifei Cheng
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引用次数: 0

摘要

对于电磁波吸收陶瓷基复合材料来说,控制损耗机制是实现稳定的高温宽带吸收性能的关键。本文利用多尺度结构设计丰富了EMW损耗机制,协同提高了EMW吸收能力和带宽。首先,基于纤维预制体的可调性,在N610纤维布上构建三维碳纤维周期单元。然后,通过引入纳米级吸收单元,即碳纳米线,对N610纤维的本征电磁性能进行了改性。通过控制反应条件,碳纳米线在透明N610/SiOC复合材料中弥散分布,形成大量非均相界面和导电网络。碳纤维和碳纳米线的加入,以及N610/SiOC复合材料电导率的显著差异,显著提高了材料的极化损耗和导电损耗。此外,周期性排列的碳纤维可以捕获入射emw,减少其传输,促进反射、散射和吸收。所设计的N610/SiOC复合材料在室温至600℃范围内具有优异的EMW吸收性能,整个研究波段的反射损耗小于- 8 dB,在4-18 GHz范围内有效吸收带宽超过10.7 GHz。这种创新的多尺度设计方法,其特点是具有高电负性差的吸收单元的离散分布,代表了推进高温和宽带emw吸收cmc发展的新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Carbon nanowire modified Nextel 610/SiOC composites with gradient periodic structure for enhanced broadband electromagnetic-wave absorption performance at elevated temperatures
For electromagnetic wave absorbing ceramic matrix composites, it is crucial to control the loss mechanism to achieve stable high-temperature broadband absorption performance. In this work, multiscale structural design is utilized to enrich EMW loss mechanism, synergistically improving the EMW absorption capacity and bandwidth. Firstly, based on the tunability of the fiber preform, three-dimensional carbon fiber periodic units were constructed on an N610 fiber cloth. Then, the intrinsic electromagnetic properties of the N610 fibers were modified by introducing nanoscale absorption units, namely carbon nanowires. The carbon nanowires were diffusely distributed in transparent N610/SiOC composites by controlling the reaction conditions, forming a large number of heterogeneous interfaces and conductive networks. The carbon fiber and carbon nanowires, together with the notable conductivity difference with respect to the N610/SiOC composites, significantly enhance the polarization loss and conductive loss. Besides, the periodically arranged carbon fibers can trap the incident EMWs and reduce their transmission, promoting reflection, scattering, and absorption. The designed N610/SiOC composites exhibit superior EMW absorption performance from room temperature to 600 ℃, with a reflection loss less than −8 dB across the entire investigated band and an effective absorption bandwidth exceeding 10.7 GHz at 4–18 GHz. This innovative multiscale design approach, characterized by a discrete distribution of absorbing units with a high electronegativity difference, represents a fresh avenue for advancing the development of high-temperature and wide-band EMW-absorbing CMCs.
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来源期刊
Journal of Alloys and Compounds
Journal of Alloys and Compounds 工程技术-材料科学:综合
CiteScore
11.10
自引率
14.50%
发文量
5146
审稿时长
67 days
期刊介绍: The Journal of Alloys and Compounds is intended to serve as an international medium for the publication of work on solid materials comprising compounds as well as alloys. Its great strength lies in the diversity of discipline which it encompasses, drawing together results from materials science, solid-state chemistry and physics.
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