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Conditions of excitation and sensitivity of diffractively-coupled surface lattice resonances over plasmonic nanoparticle arrays in ATR geometry

机译:ATR几何中的等离激元纳米粒子阵列的衍射耦合表面晶格共振的激发条件和灵敏度条件

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摘要

We investigate conditions of excitation and properties of Plasmonic Surface Lattice Resonances (PSLR) over glass substrate-supported Au nanoparticle dimers (~100-200 nm) arranged in a periodic metamaterial lattice, in Attenuated Total Reflection (ATR) optical excitation geometry, and assess their sensitivities to variations of refractive index (RI) of the adjacent sample dielectric medium. We show that spectral sensitivity of PSLR to RI variations is determined by the lattice periodicity (~ 320 nm per RIU change in our case), while ultranarrow resonance lineshapes (down to a few nm full-width-at-half-maximum) provide very high figure-of-merit values evidencing the possibility of ultrasensitive biosensing measurements. Combining advantages of nanoscale architectures, including a strong concentration of electric field, the possibility of manipulation at the nanoscale etc, and high phase and spectral sensitivities, PSLRs promise a drastic advancement of current state-of-the-art plasmonic biosensing technology.
机译:我们研究了衰减条件下的全反射(ATR)光学激发几何结构中玻璃基体支撑的Au纳米粒子二聚体(〜100-200 nm)上的等离子体表面晶格共振(PSLR)的激发条件和性质。它们对相邻样品电介质的折射率(RI)变化的敏感性。我们表明,PSLR对RI变化的光谱敏感性由晶格周期性决定(在我们的情况下,每个RIU变化约为320 nm),而超窄共振线形(低至半最大最大全宽)高品质因数值证明了超灵敏生物传感测量的可能性。 PSLR结合了纳米级架构的优势,包括强大的电场集中,在纳米级进行操作的可能性等,以及高的相位和光谱灵敏度,因此有望极大地促进当前最先进的等离激元生物传感技术的发展。

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