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A Route to Unusually Broadband Absorption Spanning from Visible to Mid-Infrared

Optics 2018-10-17 v1 Materials Science Applied Physics

Abstract

In this paper, a route to ultra-broadband absorption is suggested and demonstrated by a feasible design. The high absorption regime (absorption above 90%) for the suggested structure ranges from visible to mid-infrared (MIR), i.e. for the wavelength from 478 to 3,278 nm that yields an ultra-wide bandwidth of 2,800 nm. The structure consists of a top-layer-patterned metal-insulator-metal (MIM) configuration, into the insulator layer of which, an ultra-thin 5 nm layer of Manganese (Mn) is embedded. The MIM configuration represents a Ti-Al2O3-Ti tri-layer. It is shown that, without the ultra-thin layer of Mn, the absorption bandwidth is reduced to 274 nm. Therefore, adding only a 5 nm layer of Mn leads to a more than tenfold increase in the width of the absorption band. It is explained in detail that the physical mechanism contributing to this ultra-broadband result is a combination of plasmonic and non-plasmonic resonance modes, along with the appropriate optical properties of Mn. This structure has the relative bandwidth (RBW) of 149%, while only one step of lithography is required for its fabrication, so it is relatively simple to fabricate. This makes it rather promising for practical applications.

Keywords

Cite

@article{arxiv.1810.07139,
  title  = {A Route to Unusually Broadband Absorption Spanning from Visible to Mid-Infrared},
  author = {Majid Aalizadeh and Amin Khavasi and Andriy E. Serebryannikov and Guy A. E. Vandenbosch and Ekmel Ozbay},
  journal= {arXiv preprint arXiv:1810.07139},
  year   = {2018}
}

Comments

17 pages, 12 figures