Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics and Telecommunication Engineering, South China Normal University, Guangzhou 510006, China.
Department of Applied Physics, The Hong Kong Polytechnic University, Hong Kong SAR, China.
Sci Rep. 2016 Jul 21;6:29984. doi: 10.1038/srep29984.
We propose a novel mechanism to construct a tunable and ultracompact refractive index sensor by using the Fano resonance in metal-graphene hybrid nanostructure. Plasmon modes in graphene nanoribbons and waveguide resonance modes in the slits of metal strip array coexist in this system. Strong interference between the two different modes occurs when they are spectrally overlapped, resulting in a Fano-type asymmetrically spectral lineshape which can be used for detecting the variations of ambient refractive index. The proposed sensor has a relatively high figure of merit (FOM) over 20 and its sensing performance shows a good tolerance to roughness. In addition to the wide range measurement enabled by the electrical tuning of graphene plasmon modes, such ultracompact system also provides an angle-independent operation and therefore, it can efficiently work for the detection of gas, liquid, or solids. Such optical nanostructure may also be applied to diverse fields such as temperature/pressure metering, medical detection, and mechanical precision measurement.
我们提出了一种通过使用金属-石墨烯混合纳米结构中的 Fano 共振来构建可调谐和超紧凑折射率传感器的新机制。在该系统中,石墨烯纳米带中的等离子体模式和金属条阵列狭缝中的波导共振模式共存。当它们在光谱上重叠时,两种不同模式之间会发生强烈的干涉,从而导致可以用于检测环境折射率变化的 Fano 型非对称光谱线形状。所提出的传感器具有相对较高的品质因数 (FOM) 超过 20,并且其传感性能对粗糙度具有良好的容忍度。除了通过石墨烯等离子体模式的电调谐实现的宽测量范围之外,这种超紧凑系统还提供了角度独立的操作,因此可有效地用于气体、液体或固体的检测。这种光学纳米结构还可以应用于温度/压力测量、医疗检测和机械精密测量等多个领域。