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Ultra-broadband metamaterial absorber in long wavelength Infrared band based on resonant cavity modes

机译:基于谐振腔模式的长波长红外波段超宽带超材料吸收器

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摘要

A wavelength-selective, ultrathin, broadband infrared metal-insulator-metal (MIM) absorber with multi-sized Ti-Ge cubes is proposed. By flexibly combining different sizes of Ti-Ge cubes, stacking upward and reasonably filling the border, all the resulting 3 structures that we propose show an average absorptivity of at least 90% over a wide spectral range in the infra-red, extending from 6. 3 mu m to 14.8 mu m. The absorptivity is further increased up to 99% when considering narrower spectral ranges such as 7.96-8.34 mu m and 11.02-11.75 mu m wavebands, which is superior than the previous work in long wavelength infrared band based on the MIM structure. Those characteristics vary depending on the 3 designs considered and studied in this work: single-layer structure, double-layer structure and modified structure. The intrinsic strong energy dissipation caused by highly lossy metal Ti (here Titanium) and excited low-Q cavity modes are key factors contributing to such efficient broadband absorption. The polarization and angle insensitivity are demonstrated by analysing the absorption performance with oblique incidences for both transverse electric wave (TE) and transverse magnetic wave (TM). Moreover, flexible combinations of different resonators allow trade-offs between the absorption bandwidth and the absorbance, which makes the operating waveband of the metamaterial absorber adjustable through proper design. The proposed broadband absorbers have many potential applications, including microbolometers, thermal emitters, and plasmonic sensors.
机译:提出了具有多尺寸Ti-Ge立方体的波长选择性超薄,宽带红外金属 - 金属(MIM)吸收器。通过灵活地组合不同尺寸的TI-GE立方体,堆叠向上和合理地填充边界,所有所得到的3个结构,我们提出的3种结构在红外线的宽度范围内显示了至少90%的平均吸收率,从6开始延伸。3 mu m至14.8 mu m。吸收率进一步提高至99%考虑较窄光谱范围时,例如7.96-8.34微米和11.02-11.75微米波段,其是比基于MIM结构中的长波长红外波段的先前的工作优异。这些特征根据这项工作中考虑和研究的3种设计而有所不同:单层结构,双层结构和改性结构。由高损耗金属Ti(此处钛)和激励的低Q腔模式引起的内在能量耗散是有助于这种有效的宽带吸收的关键因素。通过对横向电波(TE)和横向磁波(TM)的倾斜血液分析吸收性能来证明偏振和角度不敏感性。此外,不同谐振器的灵活组合允许在吸收带宽和吸光度之间进行折磨,这使得超材料吸收器的操作波段通过适当的设计调节。所提出的宽带吸收剂具有许多潜在的应用,包括微压计,热发射器和等离子体传感器。

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