Kendrick质量缺陷(KMD)分析方法的改进加速了高分辨率质谱技术对聚合物的表征

IF 0.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL
Sayaka Nakamura, Hiroaki Sato
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引用次数: 0

摘要

高分辨率质谱法是表征高分子材料的一种有力方法,但由此产生的复杂质谱给数据分析带来了困难。Kendrick质量缺陷分析(KMD)是一种将复杂但信息量大的质谱转换成二维图的方法,可以直观地显示多组分的分布,近年来作为一种实用的聚合物表征技术而受到关注。传统的KMD分析方法对于复杂成分的工业高分子材料的分析仍有不足,因此我们提出了几种先进的KMD分析技术,如分辨率增强KMD (RE-KMD)和剩余KMD (RKM)。进一步发展了样品的前处理方法,以观察适合KMD分析的高质量基质辅助激光解吸电离(MALDI)质谱。KMD分析已进一步扩展到其他质谱技术,如电喷雾电离(ESI)-MS,实时直接分析(DART)-MS和热解- gc -MS。这些成果有望加速高分辨率质谱技术对聚合物的表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of Kendrick Mass Defect (KMD) Analysis to Accelerate the Polymer Characterization by High-resolution Mass Spectrometry
High-resolution mass spectrometry is a powerful method for the characterization of polymer materials, but the resulting complex mass spectra bring with it the difficulty of data analysis. Kendrick mass defect (KMD) analysis, which converts complex but informative mass spectra into a two-dimensional plot, can visualize the distribution of multiple components, and has recently attracted attention as a practical polymer characterization technique. Conventional KMD analysis is still insufficient for analysis of industrial polymer materials with complex compositions, so we have proposed several advanced KMD analysis techniques, such as resolution-enhanced KMD (RE-KMD) and remainder of KM (RKM). Sample pretreatment methods have been further developed to observe high quality matrix-assisted laser desorption ionization (MALDI) mass spectra suitable for the KMD analysis. The KMD analyses have been further expanded to other mass spectrometric techniques such as electrospray ionization (ESI)-MS, direct analysis in real time (DART)-MS, and pyrolysis-GC-MS. These achievements are expected to accelerate polymer characterization using high-resolution mass spectrometry.
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来源期刊
Bunseki Kagaku
Bunseki Kagaku 化学-分析化学
CiteScore
0.30
自引率
0.00%
发文量
64
审稿时长
3 months
期刊介绍: Bunsekikagaku is a journal written in Japanese and is published monthly by The Japan Society for Analytical Chemistry. The journal publishes papers on all aspects of the theory and practice of analytical sciences, including fundamental and applied, inorganic and organic, wet chemical and instrumental methods.
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