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Ultra-narrow surface lattice resonances in plasmonic metamaterial arrays for biosensing applications

机译:用于生物传感应用等离子体超材料阵列的超窄表面晶格共振

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AbstractWhen excited over a periodic metamaterial lattice of gold nanoparticles (~ 100nm), localized plasmon resonances (LPR) can be coupled by a diffraction wave propagating along the array plane, which leads to a drastic narrowing of plasmon resonance lineshapes (down to a few nm full-width-at-half-maximum) and the generation of singularities of phase of reflected light. These phenomena look very promising for the improvement of performance of plasmonic biosensors, but conditions of implementation of such diffractively coupled plasmonic resonances, also referred to as plasmonic surface lattice resonances (PSLR), are not always compatible with biosensing arrangement implying the placement of the nanoparticles between a glass substrate and a sample medium (air, water). Here, we consider conditions of excitation and properties of PSLR over arrays of glass substrate-supported single and double Au nanoparticles (~ 100–200nm), arranged in a periodic metamaterial lattice, in direct and Attenuated Total Reflection (ATR) geometries, and assess their sensitivities to variations of refractive index (RI) of the adjacent sample dielectric medium. First, we identify medium (PSLRair, PSLRwatfor air and water, respectively) and substrate (PSLRsub) modes corresponding to the coupling of individual plasmon oscillations at medium- and substrate-related diffraction cut-off edges. We show that spectral sensitivity of medium modes to RI variations is determined by the lattice periodicity in both direct and ATR geometries (~ 320nm per RIU change in our case), while substrate mode demonstrates much lower sensitivity. We also
机译:<![cdata [ 抽象 在通过金纳米颗粒(〜100nm)的周期性超材料晶格上振奋时,局部等离子体共振(LPR)可以通过沿传播的衍射波耦合阵列平面导致等离子体共振线的激烈变窄(降至截至几NM全宽半最大),并产生反射光的相位的奇异性。这些现象看起来非常有希望改善等离子传感器的性能的性能,但这种衍射耦合等离子体共振的实现条件,也称为等离子体表面晶格共振(PSLR),并不总是与暗示纳米颗粒放置的生物传感装置兼容在玻璃基板和样品介质(空气,水)之间。这里,我们考虑在玻璃基板支撑的单个和双Au纳米颗粒(〜100-200nm)上,在周期性超材料格子中,直接和减弱的总反射(ATR)几何形状,并评估它们对相邻样品介电介质的折射率(RI)变形的敏感性。首先,我们识别介质(PSLR AIR ,PSLR WAT 空气和水分)和基板(PSLR SUB )模式,其对应于中等和基板相关衍射切断边缘的单个等离子体振荡的耦合。我们表明媒体模式对RI变化的光谱灵敏度由直接和ATR几何形状(每个RIU在我们的情况下的〜320nm)中的晶格周期确定,而基板模式表明敏感性大得多。我们也

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