材料科学
衰减
吸收(声学)
反射(计算机编程)
散射
双层
纳米线
电磁辐射
反射系数
电阻抗
衰减系数
等级制度
电磁屏蔽
电磁学
光电子学
反射损耗
相(物质)
介电常数
光学
波阻抗
散射参数
伪装
高阻抗
复合材料
纳米技术
电磁兼容性
作者
Yunpeng Jiang,Shuchang Jiang,Daochen Bai,Keyi Jiang,Xingjian Liu,Shihang Su,Aihua He,Huarong Nie
摘要
ABSTRACT Designing advanced electromagnetic wave (EMW) absorbers remains challenging because improved attenuation is often accompanied by deteriorated impedance matching. Although multilayer and gradient architectures can mitigate this conflict, increasing structural complexity does not necessarily guarantee enhanced absorption, as additional interfaces may alter local reflection behavior and overall electromagnetic response. Here, ultralight carbon nanotube/Ni nanowire aerogels (∼34 mg cm − 3 ) were employed as a model platform to compare a low‐interface, high‐gradient L–H bilayer with a more finely graded L–M–H trilayer. The L–H bilayer achieved a minimum reflection loss of −58.3 dB at 4.7 mm with full X‐band coverage (8.2–12.4 GHz), outperforming L–M–H despite lower attenuation capability and less favorable point‐value impedance matching. This architecture‐dependent absorption hierarchy is associated with concentrated electromagnetic contrast at the L/H interface, together with a relatively large local interfacial reflection coefficient (| Γ L/H | ≈ 0.17), a surface‐reflection phase close to the nominal antiphase condition ( ΔΦ = ‐177°), and an appropriate impedance‐attenuation balance. A similar absorption hierarchy was reproduced in pristine CNT controls and full‐wave simulations, while RCS simulations confirmed scattering suppression. These findings highlight interfacial topology and reflection‐phase characteristics as complementary considerations beyond conventional impedance‐attenuation optimization for lightweight layered EMW absorbers.
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