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Reflection-Phase Coordination in Low-Interface, High-Gradient Electromagnetic Absorbers
DOI:10.1002/adfm.78506.png)
摘要
En 中文
设计先进电磁波(EMW)吸波体仍具挑战性,因为衰减性能的提升常伴随阻抗匹配的恶化。尽管多层结构和梯度设计可缓解此矛盾,但结构复杂度的增加并不必然带来吸收性能的提升,因额外界面可能改变局部反射行为及整体电磁响应。本研究以超轻碳纳米管/镍纳米线气凝胶(∼34 mg cm−3)为模型平台,对比了低界面、高梯度的L–H双层与更精细分级的L–M–H三层结构。L–H双层在4.7 mm处实现最小反射损耗−58.3 dB,覆盖全X波段(8.2–12.4 GHz),其性能优于L–M–H,尽管衰减能力和点值阻抗匹配较差。这种构型依赖的吸收层级与L/H界面处的电磁对比度集中相关,伴随较大的局部界面反射系数(|ΓL/H| ≈ 0.17)、接近名义反相条件的表面反射相位(ΔΦ = -177°)以及适宜的阻抗-衰减平衡。在纯碳纳米管对照组和全波仿真中重现了相似的吸收层级,而雷达散射截面(RCS)仿真验证了散射抑制效果。这些发现表明,界面拓扑和反射相位特性是轻质分层电磁波吸波体设计中超常规阻抗-衰减优化的补充考量因素。
Keyword:
CNT/NiNW aerogels
electromagnetic wave absorption
high-gradient architecture
interfacial reflection
low-interface
reflection-phase coordination
期刊
IF:
19
论文数:
3.5W
被引数:
32.1W
机构
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