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Use of analyte-modulated modal power distribution in multimode optical fibers for simultaneous single-wavelength evanescent-wave refractometry and spectrometry

机译:使用分析物调制的模态功率分布在多模光纤中同时进行单波长e逝波折光法和光谱法

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A new method is described for the simultaneous determination of absorbance and refractive index of a sample medium. The method is based on measurement of the analyte-modulated modal power distribution (MPD) in a multimode waveguide. In turn, the MPD is quantified by the far-field spatial pattern and intensity of light, i.e., the Fraunhofer diffraction pattern (registered on a CCD camera), that emerges from a multimode optical fiber. Operationally, light that is sent down the fiber interacts with the surrounding analyte-containing medium by means of the evanescent wave at the fiber boundary. The light flux in the propagating beam and the internal reflection angles within the fiber are both affected by optical absorption connected with the analyte and by the refractive index of the analyte-containing medium. In turn, these angles are reflected in the angular divergence of the beam as it leaves the fiber. As a result, the Fraunhofer diffraction pattern of that beam yields two parameters that can, together, be used to deduce refractive index and absorbance. This MPD based detection offers important advantages over traditional evanescent-wave detection strategies which rely on recording only the total transmitted optical power or its lost fraction. First, simultaneous determination of sample refractive index and absorbance is possible at a single probe wavelength. Second, the sensitivity of refractometric and absorption measurements can be controlled simply, either by adjusting the distance between the end face of the fiber and the CCD detector or by monitoring selected modal groups at the fiber output. As a demonstration of these capabilities, several weakly absorbing solutions were examined, with refractive indices in the range from 1.3330 to 1.4553 and with absorption coefficients in the range 0-16 cm(-1). The new detection strategy is likely to be important in applications in which sample coloration varies and when it is necessary to compensate for variations in the refractive index of a sample. [References: 45]
机译:描述了一种同时测定样品介质的吸光度和折射率的新方法。该方法基于对多模波导中分析物调制的模态功率分布(MPD)的测量。进而,MPD由远场空间图案和光强度,即从多模光纤出射的弗劳恩霍夫衍射图案(在CCD相机上记录)来量化。在操作上,沿着纤维向下传播的光通过纤维边界处的e逝波与周围的含分析物的介质相互作用。传播光束中的光束和光纤内的内反射角都受到与分析物相连的光吸收和含有分析物的介质的折射率的影响。当光束离开光纤时,这些角度又反映在光束的角度发散中。结果,该光束的弗劳恩霍夫衍射图产生两个参数,可以一起用来推导折射率和吸收率。与传统的recording逝波检测策略相比,这种基于MPD的检测具有重要的优势,传统的e逝波检测策略仅依赖于记录总的传输光功率或其损耗分数。首先,可以在单个探针波长下同时确定样品的折射率和吸光度。其次,可以通过调节光纤端面与CCD检测器之间的距离,或者通过监视光纤输出端的选定模态组,来简单地控制折光率和吸收率测量的灵敏度。为了证明这些功能,我们研究了几种弱吸收溶液,其折射率在1.3330至1.4553之间,吸收系数在0-16 cm(-1)之间。在样品颜色变化以及需要补偿样品折射率变化的应用中,新的检测策略可能很重要。 [参考:45]

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