Wu Dong, Li Ruifang, Liu Yumin, Yu Zhongyuan, Yu Li, Chen Lei, Liu Chang, Ma Rui, Ye Han
State Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications, Beijing, 100876, China.
School of Science, Beijing University of Post and Telecommunication, Beijing, 100876, China.
Nanoscale Res Lett. 2017 Dec;12(1):427. doi: 10.1186/s11671-017-2203-9. Epub 2017 Jun 26.
We propose and numerically investigate a perfect ultra-narrowband absorber with an absorption bandwidth of only 1.82 nm and an absorption efficiency exceeding 95% in the visible region. We demonstrate that the perfect ultra-narrowband absorption is ascribed to the coupling effect induced by localized surface plasmon resonance. The influence of structural dimensions on the optical performance is also investigated, and the optimal structure is obtained with the extremely low reflectivity (0.001) of the resonance dip. The perfect absorber can be operated as a refractive index sensor with a sensitivity of around 425 nm/RIU and the figure of merit (FOM) reaching 233.5, which greatly improves the accuracy of the plasmonic sensors in visible region. Moreover, the corresponding figure of merit (FOM*) for this sensor is also calculated to describe the performance of the intensity change detection at a fixed frequency, which can be up to 1.4 × 10. Due to the high sensing performance, the metamaterial structure has great potential in the biological binding, integrated photodetectors, chemical applications and so on.
我们提出并通过数值模拟研究了一种完美的超窄带吸收体,其在可见光区域的吸收带宽仅为1.82纳米,吸收效率超过95%。我们证明,这种完美的超窄带吸收归因于局部表面等离子体共振引起的耦合效应。还研究了结构尺寸对光学性能的影响,并获得了共振凹陷处具有极低反射率(0.001)的最佳结构。这种完美吸收体可作为折射率传感器,灵敏度约为425纳米/RIU,品质因数(FOM)达到233.5,这大大提高了等离子体传感器在可见光区域的精度。此外,还计算了该传感器的相应品质因数(FOM*),以描述在固定频率下强度变化检测的性能,其可达1.4×10。由于具有高传感性能,这种超材料结构在生物结合、集成光电探测器、化学应用等方面具有巨大潜力。