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Broadband near-infrared TiO2 dielectric metamaterial absorbers

机译:宽带近红外TiO2电介质超材料吸收器

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摘要

Metamaterial absorbers (MAs) have drawn increasing attention due to their prospects in many fields such as sensing, thermal emission, solar energy harvesting, etc. However, it remains challenging to realize broadband MAs with a simple structure. Here, we propose a broadband, polarization-insensitive, and omnidirectional MA working in the near-infrared range with simple structure, which is composed of titanium dioxide (TiO2) cylinder nano-antenna arrays on the top of a vanadium (V) film deposited on a silicon substrate. This device demonstrates broadband absorption spectra from 820 to 1440 nm with the absorption above 90%, with high absorption up to the incident angle of similar to 50 degrees. The broadband absorption of the designed MA is mainly attributed to the interaction both of dielectric cavity resonance and electric dipole resonance. The electric and magnetic field intensity distribution of the MA are analyzed to better understand its absorption mechanism. In addition, the effects of the geometrical parameters on absorption are discussed. The demonstrated MA is relatively easy to fabricate and can be realized with other proper materials to work in other wavelength bands. The design is useful for applications such as solar energy harvesting, sensing, and camouflage. (C) 2019 Optical Society of America
机译:由于它们在许多领域的前景,如传感,热排放,太阳能收割等的展望,超材料吸收剂(MAS)已经引起了越来越长的关注。然而,通过结构简单地实现宽带MAS仍然具有挑战性。在这里,我们提出了在近红外线范围内工作的宽带,极化不敏感和全向量MA,其结构简单地构成,其由钒(V)薄膜顶部的二氧化钛(TiO2)圆筒纳米天线阵列组成在硅衬底上。该装置以高于90%的吸收,该装置显示宽带吸收光谱从820至1440nm,吸收高吸收到20度的入射角。设计MA的宽带吸收主要归因于介电腔共振和电偶极谐振的相互作用。分析MA的电气和磁场强度分布以更好地了解其吸收机制。此外,讨论了几何参数对吸收的影响。所示的MA相对容易制造,并且可以用其他适当的材料实现以在其他波长带中工作。该设计对于太阳能收获,传感和伪装等应用是有用的。 (c)2019年光学学会

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  • 来源
    《Applied optics》 |2019年第26期|共5页
  • 作者单位

    Beijing Inst Technol Sch Opt &

    Photon Minist Educ China Key Lab Photoelect Imaging Technol &

    Syst Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Opt &

    Photon Minist Educ China Key Lab Photoelect Imaging Technol &

    Syst Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Opt &

    Photon Minist Educ China Key Lab Photoelect Imaging Technol &

    Syst Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Opt &

    Photon Minist Educ China Key Lab Photoelect Imaging Technol &

    Syst Beijing 100081 Peoples R China;

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  • 正文语种 eng
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