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用于光纤传感的表面增强吸收光谱法

Surface-Enhanced Absorption Spectroscopy for Optical Fiber Sensing.

作者信息

Fuglerud Silje S, Milenko Karolina, Aksnes Astrid, Hjelme Dag R

机构信息

Department of Electronic Systems, Norwegian University of Science and Technology, O.S. Bragstads plass 2b, 7034 Trondheim, Norway.

Department of Endocrinology, St. Olavs University Hospital, Prinsesse Kristinas gate 3, 7030 Trondheim, Norway.

出版信息

Materials (Basel). 2019 Dec 19;13(1):34. doi: 10.3390/ma13010034.

Abstract

Visible and near-infrared spectroscopy are widely used for sensing applications but suffer from poor signal-to-noise ratios for the detection of compounds with low concentrations. Enhancement by surface plasmon resonance is a popular technique that can be utilized to increase the signal of absorption spectroscopy due to the increased near-field created close to the plasmons. Despite interest in surface-enhanced infrared absorption spectroscopy (SEIRAS), the method is usually applied in lab setups rather than real-life sensing situations. This study aimed to achieve enhanced absorption from plasmons on a fiber-optic probe and thus move closer to applications of SEIRAS. A tapered coreless fiber coated with a 100 nm Au film supported signal enhancement at visible wavelengths. An increase in absorption was shown for two dyes spanning concentrations from 5 × 10 mol/L to 8 × 10 mol/L: Rhodamine 6G and Crystal Violet. In the presence of the Au film, the absorbance signal was 2-3 times higher than from an identically tapered uncoated fiber. The results confirm that the concept of SEIRAS can be implemented on an optical fiber probe, enabling enhanced signal detection in remote sensing applications.

摘要

可见光谱和近红外光谱在传感应用中被广泛使用,但在检测低浓度化合物时存在信噪比差的问题。表面等离子体共振增强是一种常用技术,由于靠近等离子体产生的近场增强,可用于增加吸收光谱的信号。尽管人们对表面增强红外吸收光谱(SEIRAS)感兴趣,但该方法通常应用于实验室设置而非实际传感场景。本研究旨在实现光纤探针上等离子体吸收的增强,从而更接近SEIRAS的应用。涂覆有100nm金膜的锥形无芯光纤在可见波长下支持信号增强。对于浓度范围从5×10⁻⁶mol/L到8×10⁻⁶mol/L的两种染料:罗丹明6G和结晶紫,吸收均有增加。在有金膜的情况下,吸光度信号比相同锥形的未涂覆光纤高2至3倍。结果证实,SEIRAS的概念可以在光纤探针上实现,从而在遥感应用中实现增强的信号检测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f4f/6981369/6b8605d37449/materials-13-00034-g001.jpg

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