Author:
Dunn Philip J. H.,Malinovsky Dmitry,Achtar Eli,Clarkson Cailean,Goenaga-Infante Heidi
Abstract
Abstract
Determination of the purity of a substance traceable to the International System of Units (SI) is important for the production of reference materials affording traceability in quantitative measurements. Post-column isotope dilution using liquid chromatography-chemical oxidation-isotope ratio mass spectrometry (ID-LC-CO-IRMS) has previously been suggested as a means to determine the purity of organic compounds; however, the lack of an uncertainty budget has prevented assessment of the utility this approach until now. In this work, the previously published ID-LC-CO-IRMS methods have not only been improved by direct gravimetric determination of the mass flow of 13C-labelled spike but also a comprehensive uncertainty budget has been established. This enabled direct comparison of the well-characterised ID-LC-CO-IRMS method to quantitative nuclear magnetic resonance spectroscopy (qNMR) for purity determination using valine as the model compound. The ID-LC-CO-IRMS and qNMR methods provided results that were in agreement within the associated measurement uncertainty for the purity of a sample of valine of (97.1 ± 4.7)% and (99.64 ± 0.20)%, respectively (expanded uncertainties, k = 2). The magnitude of the measurement uncertainty for ID-LC-CO-IRMS determination of valine purity precludes the use of this method for determination of purity by direct analysis of the main component in the majority of situations; however, a mass balance approach is expected to result in significantly improved measurement uncertainty.
Publisher
Springer Science and Business Media LLC
Subject
Biochemistry,Analytical Chemistry
Reference41 articles.
1. Borges R, Meyer VR. The uncertainty of purity of reference materials must be known. J Pharm Biomed Anal. 2013;77:40–3.
2. McCarthy RS, Gamache PH, Asa DJ, Laws K, Cole RO, Woodcock MJ, et al. HPLC analysis of nonvolatile analytes using charged aerosol detection. LCGC N Am. 2005;23:150–61.
3. Vehovec T, Obreza A. Review of operating principle and applications of the charged aerosol detector. J Chromatogr A. 2010;1217:1549–56.
4. Górecki T, Lynen F, Szucs R, Sandra P. Universal response in liquid chromatography using charged aerosol detection. Anal Chem. 2006;78:3186–92.
5. Vervoort N, Daemen D, Török G. Performance evaluation of evaporative light scattering detection and charged aerosol detection in reversed phase liquid chromatography. J Chromatogr A. 2008;1189:92–100.
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献