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Harnessing Carbon‐Containing Materials for Next‐Generation High‐Temperature Electromagnetic Wave Absorbers

材料科学 超材料 航空航天 电介质 工程物理 电磁辐射 介电损耗 光电子学 可靠性(半导体) 热稳定性 吸收(声学) 机械工程 微波食品加热 热的 电阻抗 模块化设计 偶极子 电子工程 碳纤维 航空航天材料 铁磁性 复合材料 涡流 热失控 电气工程 声学 保温 磁铁 灾难性故障 居里温度 高阻抗
作者
Yang Li,Yuchang Qing,Wei Li,Chao Ma,Zhongyi Bai,Gang Shao,Hailong Wang,Ming Huang,Xianhu Liu,Bingbing Fan
出处
期刊:Carbon energy [Wiley]
卷期号:8 (2) 被引量:8
标识
DOI:10.1002/cey2.70118
摘要

ABSTRACT The demand for high‐temperature electromagnetic wave absorption (EWA) materials has significantly increased alongside advancements in aerospace and communication technologies. Although traditional magnetic absorbers, such as ferrites and metal powders, show excellent magnetic loss performance at room temperature, they have significant limitations in harsh environments due to their high density, low Curie temperature, and susceptibility to oxidation. In contrast, carbon‐containing materials have emerged as promising candidates for high‐temperature EWA applications, owing to their high melting point, low density, tunable dielectric loss mechanisms, and superior thermal stability. Unlike magnetic materials, carbon‐based systems primarily dissipate electromagnetic energy through conductance loss, dipole polarization, and interfacial polarization, thereby avoiding performance degradation at elevated temperatures. However, several critical challenges remain, including insufficient oxidation resistance, mechanical reliability issues, and the need for stable impedance matching. To address these limitations, recent strategies such as defect engineering, heterointerface construction, and metamaterial design have been proposed to enhance thermal stability and functional performance. This review provides a systematic summary of recent advances in carbon‐containing absorbers, with a focus on dielectric loss mechanisms, optimization strategies, and multiscale structural design principles. By elucidating the structure–property relationships of carbon materials, carbide ceramics, and novel carbon hybrids, this study aims to offer theoretical and technical guidance for the development of advanced high‐temperature electromagnetic wave absorbers, thereby promoting their practical applications in aerospace and telecommunications.
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