Yong Zhengdong, Zhang Senlin, Gong Chensheng, He Sailing
Centre for Optical and Electromagnetic Research, State Key Laboratory of Modern Optical Instrumentations, Zhejiang University, Hangzhou 310058, China.
Department of Electromagnetic Engineering, School of Electrical Engineering, Royal Institute of Technology (KTH), S-100 44 Stockholm, Sweden.
Sci Rep. 2016 Apr 5;6:24063. doi: 10.1038/srep24063.
Plasmonics offer an exciting way to mediate the interaction between light and matter, allowing strong field enhancement and confinement, large absorption and scattering at resonance. However, simultaneous realization of ultra-narrow band perfect absorption and electromagnetic field enhancement is challenging due to the intrinsic high optical losses and radiative damping in metals. Here, we propose an all-metal plasmonic absorber with an absorption bandwidth less than 8 nm and polarization insensitive absorptivity exceeding 99%. Unlike traditional Metal-Dielectric-Metal configurations, we demonstrate that the narrowband perfect absorption and field enhancement are ascribed to the vertical gap plasmonic mode in the deep subwavelength scale, which has a high quality factor of 120 and mode volume of about 10(-4) × (λres/n)(3). Based on the coupled mode theory, we verify that the diluted field enhancement is proportional to the absorption, and thus perfect absorption is critical to maximum field enhancement. In addition, the proposed perfect absorber can be operated as a refractive index sensor with a sensitivity of 885 nm/RIU and figure of merit as high as 110. It provides a new design strategy for narrow band perfect absorption and local field enhancement, and has potential applications in biosensors, filters and nonlinear optics.
表面等离激元学提供了一种引人入胜的方式来介导光与物质之间的相互作用,能够实现强场增强与限制、共振时的大吸收和散射。然而,由于金属固有的高光损耗和辐射阻尼,同时实现超窄带完美吸收和电磁场增强具有挑战性。在此,我们提出一种全金属表面等离激元吸收体,其吸收带宽小于8纳米,偏振不敏感吸收率超过99%。与传统的金属-电介质-金属结构不同,我们证明窄带完美吸收和场增强归因于深亚波长尺度下的垂直间隙表面等离激元模式,该模式具有120的高品质因数和约10(-4)×(λres/n)(3)的模式体积。基于耦合模理论,我们验证了稀释场增强与吸收成正比,因此完美吸收对于最大场增强至关重要。此外,所提出的完美吸收体可作为折射率传感器工作,灵敏度为885纳米/RIU,品质因数高达110。它为窄带完美吸收和局部场增强提供了一种新的设计策略,在生物传感器、滤波器和非线性光学领域具有潜在应用。