Ozbay Imre, Ghobadi Amir, Butun Bayram, Turhan-Sayan Gonul
Opt Lett. 2020 Feb 1;45(3):686-689. doi: 10.1364/OL.45.000686.
In this Letter, we demonstrate an ultra-broadband metamaterial absorber of unrivaled bandwidth (BW) using extraordinary optical response of bismuth (Bi), which is the material selected through our novel analysis. Based on our theoretical model, we investigate the maximum metal-insulator-metal (MIM) cavity BW, achievable by any metal with known n-k data. We show that an ideal metal in such structures should have a positive real permittivity part in the near-infrared (NIR) regime. Contrary to noble and lossy metals utilized by most research groups in the field, this requirement is satisfied only by Bi, whose data greatly adhere to the ideal material properties predicted by our analysis. A Bi nanodisc-based MIM resonator with an absorption above 0.9 in an ultra-broadband range of 800 nm-2390 nm is designed, fabricated, and characterized. To the best of our knowledge, this is the broadest absorption BW reported for a MIM cavity in the NIR with its upper-to-lower absorption edge ratio exceeding best contenders by more than 150%. According to the findings in this Letter, the use of proper materials and dimensions will lead to realization of deep sub-wavelength efficient optical devices.
在本信函中,我们利用铋(Bi)的非凡光学响应展示了一种带宽无与伦比的超宽带超材料吸收器,铋是我们通过新颖分析选定的材料。基于我们的理论模型,我们研究了任何具有已知n-k数据的金属所能实现的最大金属-绝缘体-金属(MIM)腔带宽。我们表明,此类结构中的理想金属在近红外(NIR)区域应具有正的实介电常数部分。与该领域大多数研究团队所使用的贵金属和有损金属相反,只有铋满足这一要求,其数据与我们分析预测的理想材料特性高度吻合。设计、制作并表征了一种基于铋纳米盘的MIM谐振器,其在800 nm - 2390 nm的超宽带范围内吸收率高于0.9。据我们所知,这是近红外区域报道的MIM腔中最宽的吸收带宽,其上下吸收边缘比超过最佳竞争者150%以上。根据本信函中的发现,使用合适的材料和尺寸将有助于实现深亚波长高效光学器件。