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Transparent Perfect Microwave Absorber Employing Asymmetric Resonance Cavity

机译:采用非对称谐振腔的透明完美微波吸收器

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摘要

The demand for high‐performance absorbers in the microwave frequencies, which can reduce undesirable radiation that interferes with electronic system operation, has attracted increasing interest in recent years. However, most devices implemented so far are opaque, limiting their use in optical applications that require high visible transparency. Here, a scheme is demonstrated for microwave absorbers featuring high transparency in the visible range, near‐unity absorption (≈99.5% absorption at 13.75 GHz with 3.6 GHz effective bandwidth) in the Ku‐band, and hence excellent electromagnetic interference shielding performance (≈26 dB). The device is based on an asymmetric Fabry–Pérot cavity, which incorporates a monolayer graphene and a transparent ultrathin (8 nm) doped silver layer as absorber and reflector, and fused silica as the middle dielectric layer. Guided by derived formulism, this asymmetric cavity is demonstrated with microwaves near‐perfectly and exclusively absorbs in the ultrathin graphene film. The peak absorption frequency of the cavity can be readily tuned by simply changing the thickness of the dielectric spacer. The approach provides a viable solution for a new type of microwave absorber with high visible transmittance, paving the way towards applications in the area of optics.
机译:近年来,人们对微波频率下高性能吸收器的需求日益增加,这种吸收器可以减少干扰电子系统运行的不良辐射。但是,到目前为止,大多数已实现的设备都是不透明的,从而限制了它们在要求高可见透明性的光学应用中的使用。此处展示了一种方案,该方案针对的微波吸收器在可见光范围内具有很高的透明度,在Ku波段具有接近统一的吸收率(在13.75 GHz处具有3.6 GHz有效带宽,吸收率约为99.5%),因此具有出色的电磁干扰屏蔽性能(≈ 26分贝)。该器件基于不对称的Fabry-Pérot腔,该腔包含一个单层石墨烯和一个透明的超薄(8 nm)掺杂的银层作为吸收层和反射层,以及熔融石英作为中间介电层。在衍生公式的指导下,这种不对称空腔在微波作用下得到了完美的展示,并且仅在超薄石墨烯薄膜中吸收。只需更改介电垫片的厚度,即可轻松调整腔体的峰值吸收频率。该方法为新型的具有高可见光透射率的微波吸收器提供了可行的解决方案,为光学领域的应用铺平了道路。

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