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Sensitive analysis of trace water analytes using colourimetric cavity ringdown spectroscopy

机译:使用比色腔衰荡光谱法灵敏地分析痕量水

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摘要

The application of colourimetric cavity ringdown spectroscopy to the detection of trace compounds in water has been investigated using nitrite and iron(II) as test analytes. Samples were contained within one of three commercially available flow cells ranging in optical path length from 0.1 mm to 2.0 mm, and positioned within a two-mirror ringdown cavity. A measurement of the decay rate of the intensity of an optical pulse introduced into the cavity allows an ultrasensitive determination of optical absorption by the sample. A calibration using the known absorption coefficient of potassium permanganate at 532 nm was first carried out in order to determine the detection sensitivity in terms of minimum detectable absorption per unit path length when using each flow cell. The detection of nitrite and iron was then carried out by using well-known colour reactions, namely the Griess reaction for nitrite and the bathophenanthroline method for iron(II), to convert the analytes into strongly absorbing derivatives, which were quantified by a cavity ringdown measurement. In this first application of colourimetric cavity ringdown spectroscopy to the liquid phase, detection limits of 1.9 nM for nitrite and 3.8 nM for Fe(II) were demonstrated in a flow cell of path length 1.0 mm. The volume of sample analysed is only 196 nL, so that detection limits of this order correspond to the detection of less than 1 billion molecules. The detection method is therefore suitable for integration into a microfluidic sensing platform.
机译:使用亚硝酸盐和铁(II)作为测试分析物,研究了比色腔衰荡光谱技术在水中痕量化合物检测中的应用。样品包含在三个光学流通池中的一个中,流通池的光学路径长度范围为0.1毫米至2.0毫米,并位于两镜环形腔内。引入腔中的光脉冲强度的衰减率的测量允许超灵敏地确定样品的光吸收。首先,使用已知的高锰酸钾在532 nm处的吸收系数进行校准,以便在使用每个流通池时,根据每单位路径长度的最小可检测吸收来确定检测灵敏度。然后,使用众所周知的显色反应(亚硝酸盐的Griess反应和铁(II)的红菲咯啉法)进行亚硝酸盐和铁的检测,以将分析物转化为强吸收性衍生物,并通过腔衰荡法定量测量。在比色腔衰荡光谱技术在液相中的首次应用中,在路径长度为1.0 mm的流通池中,亚硝酸盐检测限为1.9 nM,Fe(II)检测限为3.8 nM。分析的样品量仅为196 nL,因此该检测限的数量级对应于少于10亿个分子的检测。因此,该检测方法适合集成到微流体传感平台中。

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