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Toward Prediction: Using Chemometrics for the Optimization of Sample Preparation in MALDI-TOF MS of Synthetic Polymers

机译:迈向预测:使用化学计量学优化合成聚合物的MALDI-TOF MS中的样品制备

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In recent years, matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF MS) has become a powerful tool for the study of synthetic polymers although its mechanism is still not understood in detail. Sample preparation plays the key role in obtaining reliable MALDI mass spectra, in particular, the proper choice of matrix, cationization reagent, and solvent. There is still no general sample preparation protocol for MALDI analysis of synthetic polymers. For known synthetic polymers, such as polystyrenes and other frequently investigated polymers, application tables in review articles might be a guide for selecting a MALDI matrix, cationization reagent, and solvent. For unknown polymers (polymers which were not analyzed by MALDI-TOF MS before but whose structures are in part known from the manufacturing process and from NMR analysis as well), the selection of matrix and solvent is based upon the polarity-similarity principle. Chemometric methods provide a useful tool for the investigation of sample preparation because huge data sets can be evaluated in short time, that is, for extracting relevant information and for classification of samples, as well. Furthermore, chemometrics provide a suitable way for the selection of a proper matrix, cationization reagent, and solvent. In this paper, a prediction model is presented using the partial least-squares (PLS) regression. By applying the model, the suitability of appropriate (nontested) combinations (matrix, cationization reagent, solvent) can be predicted for a certain synthetic polymer based upon the investigation of a few combinations. This model may help find suitable combinations in a short time and serve as a starting point for the investigation of unknown polymers. Results are exemplary presented for polystyrene PS2850.
机译:近年来,基质辅助激光解吸/电离飞行时间质谱(MALDI-TOF MS)已成为研究合成聚合物的有力工具,尽管其机理尚未得到详细了解。样品制备在获得可靠的MALDI质谱图中起着关键作用,尤其是正确选择基质,阳离子化试剂和溶剂。仍然没有用于合成聚合物的MALDI分析的通用样品制备方案。对于已知的合成聚合物,例如聚苯乙烯和其他经常研究的聚合物,评论文章中的应用表可能是选择MALDI基质,阳离子化试剂和溶剂的指南。对于未知聚合物(之前未通过MALDI-TOF MS分析但其结构在制造过程和NMR分析中部分已知的聚合物),基体和溶剂的选择基于极性相似原理。化学计量学方法为调查样品的制备提供了有用的工具,因为可以在短时间内评估大量数据集,即提取相关信息以及对样品进行分类。此外,化学计量学为选择合适的基质,阳离子化试剂和溶剂提供了一种合适的方法。在本文中,使用偏最小二乘(PLS)回归提出了一种预测模型。通过应用该模型,可以基于对某些合成聚合物的研究,来预测某些合成聚合物的合适(未经测试)组合(基质,阳离子化试剂,溶剂)的适用性。该模型可能有助于在短时间内找到合适的组合,并作为研究未知聚合物的起点。示例性地给出了聚苯乙烯PS2850的结果。

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