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基于包含介质覆盖层的薄膜纳米谐振器的窄带柔性完美吸收体。

Narrowband and flexible perfect absorber based on a thin-film nano-resonator incorporating a dielectric overlay.

作者信息

Park Chul-Soon, Lee Sang-Shin

机构信息

Nano Device Application Center, Kwangwoon University, 20 Kwangwoon-ro, Nowon-gu, Seoul, 01897, South Korea.

Department of Electronic Engineering, Kwangwoon University, 20 Kwangwoon-ro, Nowon-gu, Seoul, 01897, South Korea.

出版信息

Sci Rep. 2020 Oct 20;10(1):17727. doi: 10.1038/s41598-020-74893-1.

Abstract

We developed a flexible perfect absorber based on a thin-film nano-resonator, which consists of metal-dielectric-metal integrated with a dielectric overlay. The proposed perfect absorber exhibits a high quality (Q-)factor of ~ 33 with a narrow bandwidth of ~ 20 nm in the visible band. The resonance condition hinging on the adoption of a dielectric overlay was comprehensively explored by referring to the absorption spectra as a function of the wavelength and thicknesses of the overlay and metal. The results verified that utilizing a thicker metal layer improved the Q-factor and surface smoothness, while the presence of the overlay allowed for a relaxed tolerance during practical fabrication, in favor of high fidelity with the design. The origin of the perfect absorption pertaining to zero reflection was elucidated by referring to the optical admittance. We also explored a suite of perfect absorbers with varying thicknesses. An angle insensitive performance, which is integral to such a flexible optical device, was experimentally identified. Consequently, the proposed thin-film absorber featured an enhanced Q-factor in conjunction with a wide angle of acceptance. It is anticipated that our absorber can facilitate seminal applications encompassing advanced sensors and absorption filtering devices geared for smart camouflage and stealth.

摘要

我们基于薄膜纳米谐振器开发了一种柔性完美吸收体,它由金属 - 电介质 - 金属与电介质覆盖层集成而成。所提出的完美吸收体在可见光波段具有约33的高品质因数(Q因子)和约20纳米的窄带宽。通过将吸收光谱作为覆盖层和金属的波长及厚度的函数进行参考,全面探究了依赖于采用电介质覆盖层的共振条件。结果证实,使用较厚的金属层可提高Q因子和表面光滑度,而覆盖层的存在使得在实际制造过程中容差放宽,有利于与设计保持高保真度。通过参考光学导纳阐明了与零反射相关的完美吸收的起源。我们还探索了一系列不同厚度的完美吸收体。通过实验确定了这种柔性光学器件所必需的角度不敏感性能。因此,所提出的薄膜吸收体具有增强的Q因子以及宽接收角。预计我们的吸收体能够促进包括用于智能伪装和隐身的先进传感器及吸收滤波装置在内的开创性应用。

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