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Signal enhancement in microstructured silicon attenuated total reflection elements with quantum cascade laser-based spectroscopy

机译:量子级联激光光谱法增强微结构化硅衰减全反射元件中的信号

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Sensors in mid-infrared spectroscopy based on attenuated total reflection (ATR) sensing with internal reflection elements (IREs) facilitate easier measurements of aqueous solutions or other opaque analytes. Micromachined silicon (Si) elements arc an attractive alternative to conventional IREs. as they can be produced cheaply with silicon processing. Techniques for surface modifications are also easily integrated into the wafer process, and surface structures such as micropillars or nanoparticles can thereby be used for signal enhancement. Replacing the classic Fourier transform infrared (FTIR) spectrometers with tuneable quantum cascade lasers (QCLs) also opens up new avenues for sensing. In this study, the performance of basic and signal-enhanced Si IREs has been compared for measurements in a spectroscopy setup with a fibre-coupled tuneable QCL source. These IREs had V-shaped microgrooves etched on the underside for more efficient in-coupling of light, while the signal-enhanced IREs also had micropillars on the top surface. The results arc also contrasted with measurements done in a standard ATR-FTIR spectrometer, using an Alpha II spectrometer with a single-reflection diamond ATR crystal. Various concentrations of glucose (75 5000 mg/dL) in aqueous solutions were used to characterise the system performance. The quality of the signal enhancement was evaluated with regard to sensitivity and noise level in the acquired spectra. The microstructured Si IREs gave a signal enhancement of up to a factor of 3.8 compared to a basic Si element, with some concomitant increase in noise. The absorbance was higher for both types of Si IREs as compared to the diamond ATR crystal. The effective enhancement and the the limit of quantification improved by a factor up to 3.1 in the signal-enhanced IREs compared to the basic Si element.
机译:基于具有内部反射元件(IRE)的衰减全反射(ATR)感应的中红外光谱传感器,使水溶液或其他不透明分析物的测量更加容易。微加工硅(Si)元素是传统IRE的有吸引力的替代品。因为它们可以通过硅加工廉价地生产。用于表面修饰的技术也很容易集成到晶片工艺中,并且表面结构(例如微柱或纳米颗粒)可因此用于信号增强。用可调量子级联激光器(QCL)代替经典的傅立叶变换红外(FTIR)光谱仪也为传感开辟了新途径。在这项研究中,已将基本和信号增强型Si IREs的性能进行了比较,以在具有光纤耦合可调谐QCL光源的光谱仪中进行测量。这些IRE的底面刻有V形微槽,可以更有效地耦合光,而信号增强的IRE的顶面上也有微柱。该结果也与使用带有单反射金刚石ATR晶体的Alpha II光谱仪在标准ATR-FTIR光谱仪中进行的测量结果形成对比。水溶液中各种浓度的葡萄糖(75 5000 mg / dL)用于表征系统性能。关于所获得频谱中的灵敏度和噪声水平,评估了信号增强的质量。与基本的Si元素相比,微结构化的Si IREs的信号增强高达3.8倍,同时伴随着噪声的增加。与金刚石ATR晶体相比,两种类型的Si IREs的吸光度都更高。与基本Si元素相比,信号增强型IRE中的有效增强和定量限提高了3.1倍。

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