首页> 外文期刊>Analytica chimica acta >Approach for non-destructive pigment analysis in model liquids and carrots by means of time-of-flight and multi-wavelength remittance readings
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Approach for non-destructive pigment analysis in model liquids and carrots by means of time-of-flight and multi-wavelength remittance readings

机译:通过飞行时间和多波长汇款读数进行模型液体和胡萝卜中无损颜料分析的方法

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摘要

Non-destructive spectroscopy in the visible and near infrared wavelength range has been introduced for analyzing absorbing compounds in fruit and vegetables. A drawback of the method appears due to the measuring principle, where photons detected in the diffusive tissue are influenced by the sample absorption but also scattering properties leading to variation in the photon pathlength. In the present work, distribution of time-of-flight reading was used to calculate the effective pathlength between source and detector. Using this information in addition to the spectral intensities obtained with common continuous wave spectroscopy, Lambert-Beer law was applied for analyzing absolute pigment contents. The method was tested for liquid phantoms mimicking the optical properties of fresh fruit and vegetables. Lambert-Beer law using a constant pathlength as well as combined application of the intensity at a specific wavelength and the effective pathlength resulted in low calibration errors with r~2 >0.98. Applying the two calibrations on phantoms mimicking changes in the scattering properties resulted in validation results of r~2=0.47 and 0.64, respectively. Improved results by using the effective pathlength were confirmed on real-world samples. The carrot carotenoids analysis resulted in validation results of r~2=0.66 and 0.74, respectively, while the measuring uncertainty was reduced from 18.10 to 9.62%. Multivariate calibrations using the entire carrot spectra and data pre-processing aiming the reduction of scattering effects resulted in slightly lower measuring uncertainty by comparison. In the sensor fusion approach proposed, however, no expensive spectrophotometer is required and the phenomenon of varying optical properties of the sample is characterized.
机译:引入了可见光和近红外波长范围内的非破坏性光谱分析水果和蔬菜中的吸收化合物。该方法的缺点由于测量原理而出现,其中在扩散组织中检测到的光子受到样品吸收的影响,但散射特性也会导致光子路径长度的变化。在当前工作中,使用飞行时间读数的分布来计算源和探测器之间的有效路径长度。除利用普通连续波光谱法获得的光谱强度外,还使用此信息,将Lambert-Beer定律用于分析绝对颜料含量。测试了该方法的液体幻像,模拟了新鲜水果和蔬菜的光学特性。兰伯特-比尔定律使用恒定的光程长度以及在特定波长下的强度和有效光程长度的组合应用导致较低的校准误差,r〜2> 0.98。对模仿散射特性变化的模型进行两次校准,分别得到r〜2 = 0.47和0.64的验证结果。通过使用有效路径长度改善的结果在现实世界的样本上得到了证实。胡萝卜类胡萝卜素分析的验证结果分别为r〜2 = 0.66和0.74,而测量不确定度从18.10%降低至9.62%。使用整个胡萝卜光谱和数据预处理进行多变量校准(旨在减少散射效应),相比之下,测量不确定度略低。然而,在提出的传感器融合方法中,不需要昂贵的分光光度计,并且表征了样品的光学性质变化的现象。

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