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Sensitive absorbance measurement for gas-phase analytes based on multiwave mixing spectroscopy

机译:基于多波混合光谱法的气相分析物灵敏吸光度测量

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Abstract: Multi-wave mixing spectroscopy is presented as a simple and sensitive laser method for elemental analysis at trace- concentration levels with sub-Doppler spectral resolution. Since the signal is a coherent beam, virtually 100% of the generated signal can be directed into a photodetector. The nonlinear signal has a cubic dependence on excitation intensity, and hence, laser power requirements are low, and mW-level continuous-wave lasers and nJ-level pulsed dye lasers can be used for this multi-photon spectroscopic setup. The optical alignment and beam quality requirements are relatively less demanding compared to other multi-photon methods, and hence, compact inexpensive lasers, including laser diodes, can be used. Since the coherence time and coherence length requirements are also relatively low, many types of laser sources can be used quite conveniently in this nonlinear spectroscopic setup. Parts-per-trillion level detection sensitivity can be obtained for a wide range of fluorescing and non-fluorescing analytes and matrices using various analytical atomizers. The graphite furnace atomizer offers many advantages, including convenient sample introduction for solid, liquid or gas analytes, high atomization temperature, clean atomization environment, and minimum source and chemical interferences, resulting in lower atomizer background noise. Taking advantage of the unique features of this multi-wave mixing optical method and those of a graphite furnace atomizer, one can obtain both excellent spectral resolution and detection sensitivity.!16
机译:摘要:多波混合光谱法是一种简单而灵敏的激光方法,用于痕量浓度水平的亚多普勒光谱分辨率的元素分析。由于该信号是相干光束,因此几乎可以将生成的信号的100%定向到光电探测器中。非线性信号对激发强度具有三次方依赖性,因此,对激光功率的要求较低,可以将mW级连续波激光器和nJ级脉冲染料激光器用于这种多光子光谱设置。与其他多光子方法相比,光学对准和光束质量要求相对较少,因此,可以使用紧凑的廉价激光器,包括激光二极管。由于相干时间和相干长度要求也相对较低,因此在这种非线性光谱设置中可以非常方便地使用多种类型的激光源。使用各种分析雾化器,对于各种发荧光和无发荧光的分析物和基质,都可以获得万亿分之一的水平检测灵敏度。石墨炉雾化器具有许多优点,包括方便地引入固体,液体或气体分析物的样品,高雾化温度,清洁的雾化环境以及最小的源和化学干扰,从而降低了雾化器的背景噪音。利用这种多波混合光学方法和石墨炉雾化器的独特功能,可以同时获得出色的光谱分辨率和检测灵敏度。16

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