材料科学
各向异性
解耦(概率)
微波食品加热
反射损耗
光电子学
吸收(声学)
热导率
偶极子
复合材料
电阻率和电导率
反射(计算机编程)
热的
电磁辐射
涡流
磁各向异性
电导率
金属
凝聚态物理
方向(向量空间)
介电损耗
机制(生物学)
电介质
磁偶极子
作者
Kaiyuan Fan,Binggang Liu,Huimin Zhou,Yufeng Hu,Hongjian Gu,Wenlong Yang,Yousi Chen,Xigao Jian,Cheng Liu
摘要
ABSTRACT Anisotropic microwave absorbers offer designable performance for next‐generation electronic devices, yet the underlying orientation‐performance mechanism remains unclear, and heat accumulation and short‐circuit risks persist. Here, chain‐like FeCo@N‐rGO/silicone composites with controlled 0°, 45°, and 90° orientations are fabricated by interfacial adsorption‐carbonization and magnetic‐field‐assisted hot pressing. The ultrathin N‐rGO shell amplifies interfacial and dipolar polarization, enabling effective absorption at 25 wt.% in paraffin and 35 wt.% in silicone, lower than most reported magnetic metal absorbers with comparable absorption intensity. The 45° orientation delivers an ultrawide absorption bandwidth of 7.7 GHz with a minimum reflection loss of −49.84 dB, whereas the 90° orientation covers low‐frequency 5G bands. An effective‐field mechanism is established, revealing that orientation regulates depolarization and shape‐anisotropy fields, thereby decoupling polarization, magnetic resonance, conduction, and eddy‐current losses. The oriented composites further achieve an in‐plane thermal conductivity of 4.07 W·m −1 ·K −1 and an insulating resistivity of 8.7 × 10 11 Ω·cm, establishing an orientation‐field‐loss design principle for multifunctional anisotropic electromagnetic materials.
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