Kendrick分析和复杂同位素模式:用高分辨率MALDI质谱分析原始和加热多溴系阻燃剂的成分。

Q3 Physics and Astronomy
Mass spectrometry Pub Date : 2020-01-01 Epub Date: 2020-02-06 DOI:10.5702/massspectrometry.A0079
Sayaka Nakamura, Hiroaki Sato, Thierry N J Fouquet
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引用次数: 2

摘要

Kendrick分析用于处理和可视化从含有C, H, O和/或Si的聚合物中获得的质谱,具有简单的同位素模式(单同位素=最轻的同位素=短链最强烈的同位素)。对于具有复杂同位素模式的杂原子,所选择的同位素对肯德里克图中点排列的影响尚未得到广泛研究。在未知样品的情况下,由于峰的数量和单同位素峰的缺失,丰富的同位素模式也使得从质谱中评估重复单元和端基的质量和性质变得更加困难。以多溴化聚碳酸酯为例,我们报告了在Kendrick图中可以使用最丰富同位素的质量而不是通常所做的单同位素质量来获得水平点对准。旋转图(“反向肯德里克分析”)有助于准确地评估重复单元中最丰富同位素的质量,以及在温和加热(脱溴或脱氢溴化)时排出的溴化中性物质的性质。然后将整个过程应用于加热前后工业配方中未知多溴阻燃剂的表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Kendrick Analysis and Complex Isotopic Patterns: A Case Study of the Compositional Analysis of Pristine and Heated Polybrominated Flame Retardants by High-Resolution MALDI Mass Spectrometry.

Kendrick Analysis and Complex Isotopic Patterns: A Case Study of the Compositional Analysis of Pristine and Heated Polybrominated Flame Retardants by High-Resolution MALDI Mass Spectrometry.

Kendrick Analysis and Complex Isotopic Patterns: A Case Study of the Compositional Analysis of Pristine and Heated Polybrominated Flame Retardants by High-Resolution MALDI Mass Spectrometry.

Kendrick Analysis and Complex Isotopic Patterns: A Case Study of the Compositional Analysis of Pristine and Heated Polybrominated Flame Retardants by High-Resolution MALDI Mass Spectrometry.

The Kendrick analysis is used for the processing and visualization of mass spectra obtained from polymers containing C, H, O and/or Si with simple isotopic patterns (monoisotope=lightest isotope=most intense isotope for short chains). In the case of heteroatoms with complex isotopic patterns, the impact of the chosen isotope on point alignments in Kendrick plots has not been examined extensively. Rich isotopic patterns also make the evaluation of the mass and nature of the repeating unit and end-groups more difficult from the mass spectrum in the case of unknown samples due to the number of peaks and the absence of a monoisotopic peak. Using a polybrominated polycarbonate as running example, we report that horizontal point alignments can be obtained in a Kendrick plot using the mass of the most abundant isotope instead of the monoisotopic mass as is usually done. Rotating the plot ("reverse Kendrick analysis") helps to accurately evaluate the mass of the most abundant isotope of the repeating unit, as well as the nature of the brominated neutral expelled upon gentle heating (debromination or dehydrobromination). The whole procedure is then applied to the characterization of an unknown polybrominated flame retardant in an industrial formulation before and after heating.

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来源期刊
Mass spectrometry
Mass spectrometry Physics and Astronomy-Instrumentation
CiteScore
1.90
自引率
0.00%
发文量
3
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