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基于宽调谐量子级联激光器和多晶金刚石波导的红外光谱学。

Infrared spectroscopy based on broadly tunable quantum cascade lasers and polycrystalline diamond waveguides.

机构信息

Institute of Analytical and Bioanalytical Chemistry, Ulm University, Albert-Einstein-Allee 11, 89081 Ulm, Germany.

Department of Engineering Sciences, Uppsala University, Box 534, SE-75121 Uppsala, Sweden.

出版信息

Analyst. 2018 Oct 22;143(21):5112-5119. doi: 10.1039/c8an00919h.

Abstract

Recently emerging broadly tunable quantum cascade lasers (tQCL) emitting in the mid-infrared (MIR) are a versatile alternative to well established thermal emitters in combination with interferometers as applied in Fourier transform infrared (FTIR) spectroscopy. The wide and highly spectrally resolved wavelength tuning characteristics along with superior spectral energy density renders laser-based vibrational spectroscopy methods an efficient alternative vs. conventional molecular spectroscopies. Using diamond in attenuated total reflection (ATR) sensing formats benefits from the physical robustness and chemical resistivity of the internal reflective element (IRE) material. While inherent material absorption frequently limits the optical path length within diamond ATR elements, the herein presented design combining bright tQCLs with a multi-reflection polycrystalline diamond (PCD) ATR element enables an optical beam path length of approximately 5 cm. Thereby, sensitive spectroscopic measurements in the MIR are enabled. As an example, non-invasive glucose monitoring in human saliva is examined, highlighting the potential benefits of the proposed analytical concept with regards to exquisite sensitivity and selectivity in combination with a robust sensing interface, i.e., diamond. This approach paves the way towards directly analyzing molecular constituents in complex and potentially corrosive biomedical and biochemical matrices.

摘要

最近出现的宽调谐量子级联激光器(tQCL)在中红外(MIR)波段发射,与干涉仪结合使用,在傅里叶变换红外(FTIR)光谱学中是一种成熟的热发射器的多功能替代方案。宽的和高度光谱分辨率的波长调谐特性以及优异的光谱能量密度使得基于激光的振动光谱方法成为常规分子光谱学的有效替代方法。在衰减全反射(ATR)传感中使用金刚石得益于内部反射元件(IRE)材料的物理强度和化学抗性。虽然固有材料吸收经常限制金刚石 ATR 元件中的光路长度,但本文提出的设计方案将明亮的 tQCL 与多反射多晶金刚石(PCD)ATR 元件结合在一起,可实现约 5cm 的光束路径长度。从而可以实现 MIR 中的灵敏光谱测量。例如,检查了人唾液中的非侵入性葡萄糖监测,突出了所提出的分析概念在结合稳健的传感界面(即金刚石)时具有出色的灵敏度和选择性的潜在优势。这种方法为直接分析复杂且可能具有腐蚀性的生物医学和生物化学基质中的分子成分铺平了道路。

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