Analytical performance of the Conical torch in inductively coupled plasma optical emission spectroscopy operating methanol and 1-propanol solutions

Empreu sempre aquest identificador per citar o enllaçar aquest ítem http://hdl.handle.net/10045/110776
Información del item - Informació de l'item - Item information
Títol: Analytical performance of the Conical torch in inductively coupled plasma optical emission spectroscopy operating methanol and 1-propanol solutions
Autors: Grindlay, Guillermo | Alavi, Sina | Mostaghimi, Javad
Grups d'investigació o GITE: Espectrometría Atómica Analítica (GEAA)
Centre, Departament o Servei: Universidad de Alicante. Departamento de Química Analítica, Nutrición y Bromatología
Paraules clau: Conical torch | Matrix effects | Methanol | 1-propanol | Inductively coupled plasma | Optical emission spectrometry
Àrees de coneixement: Química Analítica
Data de publicació: 14-d’octubre-2020
Editor: Royal Society of Chemistry
Citació bibliogràfica: Journal of Analytical Atomic Spectrometry. 2020, 35: 2956-2963. https://doi.org/10.1039/D0JA00368A
Resum: This work explores, for the first time, the strengths and weaknesses of the Conical torch in ICP-OES operating methanol and 1-propanol solutions ranging from 30% to 100% w w−1. To this end, Conical torch performance has been evaluated considering: (i) plasma fundamental properties; (ii) plasma robustness; (iii) carbon-based background emission; and (iv) analytical figures of merit. For the sake of comparison, a Fassel torch has been employed as a reference. Results show that the discharge for the Conical torch is highly robust and plasma characteristics (i.e., excitation temperature and electron number density) are mostly unaffected by the introduction of pure and hydroalcoholic solutions of methanol and 1-propanol. In contrast, the discharge for the Fassel torch is severely affected by organics introduction and it is not feasible to operate methanol solutions above 30% w w−1. Because torch geometry and improved gas flow patterns, the Conical torch affords higher emission signal (2-fold) than the Fassel torch. Nevertheless, the detection limits for both torches are comparable, which is due to the increase in both (carbon-based) background emission and signal noise for the Conical torch. From these results and considering that the Conical torch requires less r.f. power (35%) and argon consumption (55%) than the Fassel one, it is beyond doubt that the former torch is more advantageous for those applications requiring the analysis of alcohol solutions (i.e. extraction procedures and chromatographic separations).
Patrocinadors: Financial support of Natural Sciences and Engineering Research Council (NSERC) of Canada and Dean's Strategic Fund by the University of Toronto are gratefully acknowledged. Guillermo Grindlay would like to thank the University of Alicante (ACIE19-05) for the financial support for this work.
URI: http://hdl.handle.net/10045/110776
ISSN: 0267-9477 (Print) | 1364-5544 (Online)
DOI: 10.1039/D0JA00368A
Idioma: eng
Tipus: info:eu-repo/semantics/article
Drets: © The Royal Society of Chemistry 2020
Revisió científica: si
Versió de l'editor: https://doi.org/10.1039/D0JA00368A
Apareix a la col·lecció: INV - GEAA - Artículos de Revistas

Arxius per aquest ítem:
Arxius per aquest ítem:
Arxiu Descripció Tamany Format  
ThumbnailGrindlay_etal_2020_JAnalAtSpectrom_final.pdfVersión final (acceso restringido)852,25 kBAdobe PDFObrir     Sol·licitar una còpia
ThumbnailGrindlay_etal_2020_JAnalAtSpectrom_accepted.pdfAccepted Manuscript (acceso abierto)1,86 MBAdobe PDFObrir Vista prèvia


Tots els documents dipositats a RUA estan protegits per drets d'autors. Alguns drets reservats.