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Comparison of univariate and multivariate calibration for the determination of micronutrients in pellets of plant materials by laser induced breakdown spectrometry

机译:激光诱导击穿光谱法测定植物颗粒中微量营养素单变量和多变量校准的比较

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摘要

The application of laser induced breakdown spectrometry (LIBS) aiming the direct analysis of plant materials is a great challenge that still needs efforts for its development and validation. In this way, a series of experimental approaches has been carried out in order to show that LIBS can be used as an alternative method to wet acid digestions based methods for analysis of agricultural and environmental samples. The large amount of information provided by LIBS spectra for these complex samples increases the difficulties for selecting the most appropriated wavelengths for each analyte. Some applications have suggested that improvements in both accuracy and precision can be achieved by the application of multivariate calibration in LIBS data when compared to the univariate regression developed with line emission intensities. In the present work, the performance of univariate and multivariate calibration, based on partial least squares regression (PLSR), was compared for analysis of pellets of plant materials made from an appropriate mixture of cryogenically ground samples with cellulose as the binding agent. The development of a specific PLSR model for each analyte and the selection of spectral regions containing only lines of the analyte of interest were the best conditions for the analysis. In this particular application, these models showed a similar performance, but PLSR seemed to be more robust due to a lower occurrence of outliers in comparison to the univariate method. Data suggests that efforts dealing with sample presentation and fitness of standards for LIBS analysis must be done in order to fulfill the boundary conditions for matrix independent development and validation.
机译:旨在直接分析植物材料的激光诱导击穿光谱法(LIBS)的应用是一个巨大的挑战,仍然需要对其开发和验证进行努力。以这种方式,已经进行了一系列实验方法,以证明LIBS可以用作基于湿酸消化的替代方法,用于分析农业和环境样品。 LIBS光谱为这些复杂样品提供的大量信息增加了为每种分析物选择最合适的波长的难度。一些应用表明,与使用线发射强度开发的单变量回归相比,通过在LIBS数据中应用多变量校准可以提高准确性和精度。在本工作中,比较了基于偏最小二乘回归(PLSR)的单变量和多变量校准的性能,以分析由低温研磨样品与纤维素作为粘合剂的适当混合物制成的植物材料颗粒。为每种分析物开发特定的PLSR模型以及选择仅包含目标分析物谱线的光谱区域是进行分析的最佳条件。在此特定应用中,这些模型表现出相似的性能,但与单变量方法相比,由于离群值的发生率较低,PLSR似乎更健壮。数据表明,必须努力处理样本表示和适合LIBS分析的标准,以便满足独立于基质开发和验证的边界条件。

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