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Plasmonic Metasurface for Spatially Resolved Optical Sensing in Three Dimensions

机译:用于三维空间分辨光学感测的等离子体元表面

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摘要

The highly localized sensitivity of metallic nanoparticles sustaining localized surface plasmon resonance (LSPR) enables detection of minute events occurring close to the particle surface and forms the basis for nanoplasmonic sensing. To date, nanoplasmonic sensors typically consist of two-dimensional (2D) nanoparticle arrays and can therefore only probe processes that occur within the array plane, leaving unaddressed the potential of sensing in three dimensions (3D). Here, we present a plasmonic metasurface comprising arrays of stacked Ag nanodisks separated by a thick SiO2 dielectric layer, which, through rational design, exhibit two distinct and spectrally separated LSPR sensing peaks and corresponding spatially separated sensing locations in the axial direction. This arrangement thus enables real-time plasmonic sensing in 3D. As a proof-of-principle, we successfully determine in a single experiment the layer-specific glass transition temperatures of a bilayer polymer thin film of poly(methyl methacrylate), PM/VIA, and poly(methyl methacrylate)/poly(methacrylic acid), P(MMA-MAA). Our work thus demonstrates a strategy for nanoplasmonic sensor design and utilization to simultaneously probe local chemical or physical processes at spatially different locations. In a wider perspective, it stimulates further development of sensors that employ multiple detection elements to generate distinct and spectrally individually addressable LSPR modes.
机译:金属纳米颗粒维持局部表面等离子体共振(LSPR)的高度局部敏感性能够检测靠近颗粒表面的微小事件,并形成纳米升性感测的基础。迄今为止,纳米粒子传感器通常由二维(2D)纳米颗粒阵列组成,因此只能探测在阵列平面内发生的过程,使其在三维(3D)中的感测的潜在电位。这里,我们提出了一种等离子体元表面,包括由厚的SiO2介电层分开的堆叠AG纳米阵列的阵列,其通过理性设计,在轴向方向上表现出两个不同的和光谱分离的LSPR感测峰值和相应的空间分离的感测位置。因此,这种布置能够在3D中实现实时等离子体感测。作为原则上的原则上,我们成功地确定了单一实验中聚(甲基丙烯酸甲酯),PM / VOL和聚(甲基丙烯酸甲酯)/聚(甲基丙烯酸的聚合物薄膜的层特异性玻璃化转变温度),p(mma-maa)。因此,我们的作品展示了纳米升音传感器设计和利用的策略,同时在空间不同的位置探测局部化学或物理过程。在更广泛的角度来看,它刺激了采用多个检测元件的传感器的进一步发展,以产生不同的且可散射可单独寻址的LSPR模式。

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