Rifat Ahmmed A, Rahmani Mohsen, Xu Lei, Miroshnichenko Andrey E
Nonlinear Physics Centre, Research School of Physics and Engineering, The Australian National University, Canberra, ACT 2601, Australia.
School of Engineering and Information Technology, University of New South Wales, Canberra, ACT 2600, Australia.
Materials (Basel). 2018 Jun 27;11(7):1091. doi: 10.3390/ma11071091.
We propose a hybrid metasurface-based perfect absorber which shows the near-unity absorbance and facilities to work as a refractive index sensor. We have used the gold mirror to prevent the transmission and used the amorphous silicon (a-Si) nanodisk arrays on top of the gold mirror which helps to excite the surface plasmon by scattering light through it at the normal incident. We numerically investigated the guiding performance. The proposed absorber is polarization independent and shows a maximum absorption of 99.8% at a 932 nm wavelength in the air medium. Considering the real applications, by varying the environments refractive indices from 1.33 to 1.41, the proposed absorber can maintain absorption at more than 99.7%, with a red shift of the resonant wavelength. Due to impedance matching of the electric and magnetic dipoles, the proposed absorber shows near-unity absorbance over the refractive indices range of 1.33 to 1.41, with a zero-reflectance property at a certain wavelength. This feature could be utilized as a plasmonic sensor in detecting the refractive index of the surrounding medium. The proposed plasmonic sensor shows an average sensitivity of 325 nm/RIU and a maximum sensitivity of 350 nm/RIU over the sensing range of 1.33 to 1.41. The proposed metadevice possesses potential applications in solar photovoltaic and photodetectors, as well as in organic and bio-chemical detection.
我们提出了一种基于混合超表面的完美吸收体,它具有近乎单位的吸光度,并具备用作折射率传感器的功能。我们使用金镜来防止透射,并在金镜顶部使用非晶硅(a-Si)纳米盘阵列,该阵列有助于在垂直入射时通过散射光来激发表面等离子体。我们对其导波性能进行了数值研究。所提出的吸收体与偏振无关,在空气介质中932nm波长处显示出99.8%的最大吸收率。考虑到实际应用,通过将环境折射率从1.33改变到1.41,所提出的吸收体能够保持吸收率超过99.7%,同时共振波长发生红移。由于电偶极子和磁偶极子的阻抗匹配,所提出的吸收体在1.33至1.41的折射率范围内显示出近乎单位的吸光度,在特定波长处具有零反射特性。这一特性可用于作为检测周围介质折射率的等离子体传感器。所提出的等离子体传感器在1.33至1.41的传感范围内显示出平均灵敏度为325nm/RIU,最大灵敏度为350nm/RIU。所提出的超器件在太阳能光伏和光电探测器以及有机和生化检测方面具有潜在应用。