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利用金属-绝缘体-金属结构中的锰实现大面积、经济高效、超宽频带完美吸收体。

Large-Area, Cost-Effective, Ultra-Broadband Perfect Absorber Utilizing Manganese in Metal-Insulator-Metal Structure.

机构信息

Department of Electrical and Electronics Engineering, Bilkent University, Ankara, 06800, Turkey.

Nanotechnology Research Center (NANOTAM), Bilkent University, Ankara, 06800, Turkey.

出版信息

Sci Rep. 2018 Jun 15;8(1):9162. doi: 10.1038/s41598-018-27397-y.

Abstract

Achieving broadband absorption has been a topic of intensive research over the last decade. However, the costly and time consuming stage of lithography has always been a barrier for the large-area and mass production of absorbers. In this work, we designed, fabricated, and characterized a lithography-free, large-area compatible, omni-directional, ultra-broadband absorber that consists of the simplest geometrical configuration for absorbers: Metal-Insulator-Metal (MIM). We introduced and utilized Manganese (Mn) for the first time as a very promising metal for broadband absorption applications. We optimized the structure step-by-step and compared Mn against the other best candidates introduced so far in broadband absorption structures and showed the better performance of Mn compared to them. It also has the advantage of being cheaper compared to metals like gold that has been utilized in many patterned broadband absorbers. We also presented the circuit model of the structure. We experimentally achieved over 94 percent average absorption in the range of 400-900 nm (visible and above) and we obtained absorption as high as 99.6 percent at the wavelength of 626.4 nm. We also experimentally demonstrated that this structure retains broadband absorption for large angles up to 70 degrees.

摘要

在过去的十年中,实现宽带吸收一直是密集研究的主题。然而,昂贵且耗时的光刻阶段一直是大面积和大规模生产吸收体的障碍。在这项工作中,我们设计、制造和表征了一种无光刻、大面积兼容、各向同性、超宽带吸收体,它由吸收体的最简单几何结构组成:金属-绝缘体-金属(MIM)。我们首次引入并利用锰(Mn)作为一种非常有前途的宽带吸收应用金属。我们逐步优化了结构,并将 Mn 与迄今为止在宽带吸收结构中引入的其他最佳候选材料进行了比较,结果表明 Mn 的性能优于它们。与许多采用的金属(如金)相比,它也具有成本优势,因为金在许多图案化宽带吸收体中得到了应用。我们还提出了该结构的电路模型。我们在 400-900nm(可见光及以上)范围内实现了超过 94%的平均吸收率,在 626.4nm 波长处获得了高达 99.6%的吸收率。我们还通过实验证明,该结构在高达 70 度的大角度下仍保持宽带吸收。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c46/6003956/69c256c4bc2d/41598_2018_27397_Fig1_HTML.jpg

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