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基于棱镜的近红外表面等离子体共振光谱法在纳米孔阵列平台上的传感研究。

Sensing with prism-based near-infrared surface plasmon resonance spectroscopy on nanohole array platforms.

机构信息

Department of Chemistry and Biochemistry, University of Delaware , Newark, Delaware 19716, United States.

出版信息

Anal Chem. 2014 Apr 1;86(7):3355-64. doi: 10.1021/ac4035218. Epub 2014 Mar 13.

Abstract

Nanohole arrays exhibit unique surface plasmon resonance (SPR) characteristics according to hole periodicity, diameter, and excitation wavelength (λ(SPR)). This contribution investigates the SPR characteristics and surface sensitivity of various nanohole arrays with the aim of tuning the parameters for optimal sensing capability. Both the Bragg surface plasmons (SPs) arising from diffraction by the periodic holes and the traditional propagating SPs are characterized with emphasis on sensing capability of the propagating SPs. Several trends in bulk sensitivity and penetration depth were established, and the surface sensitivity was calculated from bulk sensitivity and penetration depth of the SPs for different analyte thicknesses. Increased accuracy and precision in penetration depth values were achieved by incorporating adsorbate effects on substrate permittivity. The optimal nanohole array conditions for highest surface sensitivity were determined (820 nm periodicity, 0.27 diameter/periodicity, and λ(SPR) = 1550 nm), which demonstrated an increase in surface sensitivity for the 10 nm analyte over continuous gold films at their optimal λ(SPR) (1300 nm) and conventional visible λ(SPR) (700 nm).

摘要

纳米孔阵列根据孔的周期性、直径和激发波长(λ(SPR))表现出独特的表面等离子体共振(SPR)特性。本研究旨在调整参数以获得最佳传感性能,从而研究了各种纳米孔阵列的 SPR 特性和表面灵敏度。重点研究了由周期性孔衍射产生的布拉格表面等离子体(SP)和传统传播 SP 的特性,特别关注传播 SP 的传感能力。确定了体灵敏度和 SP 的穿透深度的几个趋势,并针对不同分析物厚度,从体灵敏度和 SP 的穿透深度计算了表面灵敏度。通过将吸附物对衬底介电常数的影响纳入其中,提高了穿透深度值的准确性和精度。确定了最高表面灵敏度的最佳纳米孔阵列条件(820nm 周期性、0.27 直径/周期性和 λ(SPR)=1550nm),与在其最佳 λ(SPR)(1300nm)和传统可见光 λ(SPR)(700nm)下的连续金膜相比,对于 10nm 分析物,表面灵敏度有所提高。

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