Lin Fan-Cheng, See Kel-Meng, Ouyang Lei, Huang You-Xin, Chen Yi-Ju, Popp Jürgen, Huang Jer-Shing
Department of Chemistry , National Tsing Hua University , Hsinchu 30013 , Taiwan.
Leibniz Institute of Photonic Technology , Albert-Einstein Straße 9 , Jena D-07745 , Germany.
Anal Chem. 2019 Aug 6;91(15):9382-9387. doi: 10.1021/acs.analchem.9b02662. Epub 2019 Jul 29.
Typical nanoparticle-based plasmonic index sensors detect the spectral shift of localized surface plasmon resonance (LSPR) upon the change of the environmental index. Therefore, they require broadband illumination and spectrometers. The sensitivity and flexibility of nanoparticle-based index sensors are usually limited because LSPR peaks are usually broad and the spectral position cannot be freely designed. Here, we present a fully designable index sensing platform using plasmonic Doppler gratings (PDGs), which provide broadband and azimuthal angle dependent grating periodicity. Different from LSPR sensors, PDG index sensors are based on the momentum matching between photons and surface plasmons via the lattice momentum of the grating. Therefore, the index change is translated into the variation of the in-plane azimuthal angle for photon-to-plasmon coupling, which manifests as directly observable dark bands in the reflection image. The PDG can be freely designed to optimally match the range of index variation for specific applications. In this work, we demonstrate PDG index sensors for large ( = 1.00-1.52) and small index variations ( = 1.3330-1.3650). The tiny and nonlinear index change of the water-ethanol mixture has been clearly observed and accurately quantified. Since the PDG is a dispersive device, it enables on-site and single-color index sensing without a spectrometer and provides a promising spectroscopic platform for on-chip analytical applications.
典型的基于纳米粒子的表面等离子体激元折射率传感器通过环境折射率的变化来检测局域表面等离子体共振(LSPR)的光谱位移。因此,它们需要宽带照明和光谱仪。基于纳米粒子的折射率传感器的灵敏度和灵活性通常受到限制,因为LSPR峰通常较宽,并且光谱位置无法自由设计。在此,我们提出了一种使用表面等离子体激元多普勒光栅(PDG)的完全可设计的折射率传感平台,该平台提供宽带且与方位角相关的光栅周期性。与LSPR传感器不同,PDG折射率传感器基于光子与表面等离子体激元之间通过光栅的晶格动量实现的动量匹配。因此,折射率变化被转化为光子与表面等离子体激元耦合的面内方位角变化,这在反射图像中表现为直接可观察到的暗带。PDG可以自由设计以最佳匹配特定应用的折射率变化范围。在这项工作中,我们展示了用于大折射率变化(范围为1.00 - 1.52)和小折射率变化(范围为1.3330 - 1.3650)的PDG折射率传感器。已经清楚地观察到并准确量化了水 - 乙醇混合物微小且非线性的折射率变化。由于PDG是一种色散器件,它无需光谱仪即可实现现场和单色折射率传感,并为片上分析应用提供了一个有前景的光谱平台。