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APCI Interface for LC- and SEC-MS Analysis of Synthetic Polymers: Advantages and Limits

机译:用于合成聚合物的LC-和SEC-MS分析的APCI接口:优点和局限性

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The main advantage of the APCI interface for the LC-MS analysis of synthetic polymers resides in its compatibility with the main chromatographic modes: reversed-phase liquid chromatography, normal-phase liquid chromatography, and size exclusion chromatography in organic phase, with the usual flow rates. Moreover, APCI can be used in positive or negative modes. Representative applications are described to highlight benefits and limitations of the LC-APCI-MS technique with the analysis of industrial polymers up to molecular masses of 5 kDa: polyethers; polysiloxanes; and copolymers of siloxanes. Results are discussed in regard to those obtained by more classical techniques: SEC and MALDI-MS. The use of an APCI interface in LC-MS and SEC-MS coupling applied to synthetic polymers is efficient up to 2000-4500 Da. The main drawback of the APCI interface is the in-source decomposition that is observed above m/z velence 2000-3000 and can induce an underestimation of average molecular weights. However, APCI allows detection on a wide range of polarity of sample/solvent and appears to be complementary to ESI.
机译:APCI接口用于合成聚合物的LC-MS分析的主要优点在于与主要色谱模式的兼容性:反相液相色谱,正相液相色谱和有机相中的体积排阻色谱,使用常规流程费率。此外,APCI可用于正向或负向模式。描述了代表性的应用,以突出分析LC-APCI-MS技术的优点和局限性,分析了分子量高达5 kDa的工业聚合物。聚硅氧烷和硅氧烷的共聚物。讨论了通过更经典的技术获得的结果:SEC和MALDI-MS。在应用于合成聚合物的LC-MS和SEC-MS耦合中使用APCI接口的效率高达2000-4500 Da。 APCI接口的主要缺点是在m / z velence 2000-3000以上观察到的源内分解,可能导致平均分子量的低估。但是,APCI可以检测多种样品/溶剂的极性,并且似乎与ESI互补。

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