Département de chimie, Université de Montréal, QC, Canada.
Analyst. 2012 Sep 21;137(18):4162-70. doi: 10.1039/c2an35566c. Epub 2012 Jul 25.
The debate is still ongoing on the optimal mode of interrogation for surface plasmon resonance (SPR) sensors. Comparative studies previously demonstrated that nanoparticles exhibiting a localized SPR (LSPR) have superior sensitivity to molecular adsorption processes while thin Au film-based propagating SPR is more sensitive to bulk refractive index. In this paper, it is demonstrated that nanohole arrays (1000 nm periodicity, 600 nm diameter and 125 nm depth), which support both LSPR and propagating SPR modes, exhibited superior sensitivity to bulk refractive index and improved detection limits for IgG sensing by using the Kretschmann configuration. The greater sensitivity to IgG detection in the Kretschmann configuration was obtained despite the shorter penetration depth of nanohole arrays excited in the enhanced optical transmission (EOT) configuration. The decay length of the electromagnetic field in EOT mode was estimated to be approximately 140 nm using a layer-by-layer deposition technique of polyelectrolytes (PAH and PSS) and was confirmed with 3D FDTD simulations, which was lengthen by almost a factor of two in the Kretschmann configuration. Spectroscopic data and field depth were correlated with RCWA and FDTD simulations, which were in good agreement with the experimental results. Considering these analytical parameters, it is advantageous to develop sensors based on nanohole arrays in the Kretschmann configuration of SPR.
关于表面等离子体共振(SPR)传感器的最佳检测模式,目前仍存在争议。先前的比较研究表明,表现出局域表面等离子体共振(LSPR)的纳米粒子对分子吸附过程具有更高的灵敏度,而基于薄金膜的传播 SPR 对体折射率更敏感。本文证明,纳米孔阵列(1000nm 周期性、600nm 直径和 125nm 深度),同时支持 LSPR 和传播 SPR 模式,在 Kretschmann 配置下对体折射率表现出更高的灵敏度,并提高了 IgG 传感的检测极限。尽管在增强光传输(EOT)模式下激发的纳米孔阵列的穿透深度较短,但在 Kretschmann 配置下获得了更高的 IgG 检测灵敏度。使用聚电解质(PAH 和 PSS)的逐层沉积技术,EOT 模式下的电磁场衰减长度估计约为 140nm,并通过 3D FDTD 模拟得到证实,在 Kretschmann 配置下,衰减长度几乎增加了一倍。光谱数据和场深与 RCWA 和 FDTD 模拟相关联,与实验结果吻合良好。考虑到这些分析参数,在 SPR 的 Kretschmann 配置中开发基于纳米孔阵列的传感器具有优势。