材料科学
复合材料
消散
接口
宽带
光电子学
电磁辐射
制作
热导率
散射
吸收(声学)
涂层
环氧树脂
极化(电化学)
太赫兹辐射
导电体
电磁学
时域有限差分法
石墨烯
热的
保温
电阻抗
纤维
复合数
波阻抗
电子设备和系统的热管理
带宽(计算)
反射损耗
宽带
电导率
作者
Sijia Wang,Ying Li,Dongyi Lei,Mingliang Ma,Xiaodong He
标识
DOI:10.1002/adfm.202526212
摘要
Abstract To address the challenge of compromised electromagnetic dissipation efficiency caused by excessive reliance on component compositing, this study proposes an innovative strategy based on intrinsic structural optimization. Through the fabrication of groove structures on industrial carbon fiber (CF) and employing the hydrothermal method for confined growth of layered double hydroxides (LDH), a butterfly‐wing biomimetic hybrid material is successfully prepared. By leveraging the synergy between multi‐level reflections from the grooves and the wave‐trapping function of the LDH layer, this structure optimizes impedance matching, enhances multiple reflection‐absorption, and integrates mechanisms including interface polarization and multiple scattering to form a multi‐dimensional dissipation network, thereby significantly boosting electromagnetic wave (EMW) attenuation. The material achieves an optimal combination of low filler loading (5.0 wt.%), thin thickness (2.04 mm), strong absorption (−57.77 dB), and broad bandwidth (7.02 GHz). The groove structure and hydrophilic LDH synergistically enhance fiber dispersion in epoxy resin, forming a 3D network that endows superior thermal conductivity and rapid electrothermal response characteristics to the composites, demonstrating potential for electrothermal deicing applications. Through the deep integration of bio‐inspiration and material structure design, a novel multi‐scale cooperative optimization paradigm of “morphology‐composition‐performance” has been established, providing the theoretical foundation for developing new‐generation multifunctional carbon‐based composites.
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