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Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species

Industrial chemical processes are struggling with adverse effects, such as corrosion and deposition, caused by gaseous alkali and heavy metal species. Mitigation of these problems requires novel monitoring concepts that provide information on gas-phase chemistry. However, selective optical online mo...

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Autores principales: Viljanen, Jan, Kalmankoski, Kim, Contreras, Victor, Sarin, Jaakko K., Sorvajärvi, Tapio, Kinnunen, Hanna, Enestam, Sonja, Toivonen, Juha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7014508/
https://www.ncbi.nlm.nih.gov/pubmed/31963656
http://dx.doi.org/10.3390/s20020533
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author Viljanen, Jan
Kalmankoski, Kim
Contreras, Victor
Sarin, Jaakko K.
Sorvajärvi, Tapio
Kinnunen, Hanna
Enestam, Sonja
Toivonen, Juha
author_facet Viljanen, Jan
Kalmankoski, Kim
Contreras, Victor
Sarin, Jaakko K.
Sorvajärvi, Tapio
Kinnunen, Hanna
Enestam, Sonja
Toivonen, Juha
author_sort Viljanen, Jan
collection PubMed
description Industrial chemical processes are struggling with adverse effects, such as corrosion and deposition, caused by gaseous alkali and heavy metal species. Mitigation of these problems requires novel monitoring concepts that provide information on gas-phase chemistry. However, selective optical online monitoring of the most problematic diatomic and triatomic species is challenging due to overlapping spectral features. In this work, a selective, all-optical, in situ gas-phase monitoring technique for triatomic molecules containing metallic atoms was developed and demonstrated with detection of PbCl(2). Sequential collinear photofragmentation and atomic absorption spectroscopy (CPFAAS) enables determination of the triatomic PbCl(2) concentration through detection of released Pb atoms after two consecutive photofragmentation processes. Absorption cross-sections of PbCl(2), PbCl, and Pb were determined experimentally in a laboratory-scale reactor to enable calibration-free quantitative determination of the precursor molecule concentration in an arbitrary environment. Limit of detection for PbCl(2) in the laboratory reactor was determined to be 0.25 ppm. Furthermore, the method was introduced for in situ monitoring of PbCl(2) concentration in a 120 MW(th) power plant using demolition wood as its main fuel. In addition to industrial applications, the method can provide information on chemical reaction kinetics of the intermediate species that can be utilized in reaction simulations.
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spelling pubmed-70145082020-03-09 Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species Viljanen, Jan Kalmankoski, Kim Contreras, Victor Sarin, Jaakko K. Sorvajärvi, Tapio Kinnunen, Hanna Enestam, Sonja Toivonen, Juha Sensors (Basel) Article Industrial chemical processes are struggling with adverse effects, such as corrosion and deposition, caused by gaseous alkali and heavy metal species. Mitigation of these problems requires novel monitoring concepts that provide information on gas-phase chemistry. However, selective optical online monitoring of the most problematic diatomic and triatomic species is challenging due to overlapping spectral features. In this work, a selective, all-optical, in situ gas-phase monitoring technique for triatomic molecules containing metallic atoms was developed and demonstrated with detection of PbCl(2). Sequential collinear photofragmentation and atomic absorption spectroscopy (CPFAAS) enables determination of the triatomic PbCl(2) concentration through detection of released Pb atoms after two consecutive photofragmentation processes. Absorption cross-sections of PbCl(2), PbCl, and Pb were determined experimentally in a laboratory-scale reactor to enable calibration-free quantitative determination of the precursor molecule concentration in an arbitrary environment. Limit of detection for PbCl(2) in the laboratory reactor was determined to be 0.25 ppm. Furthermore, the method was introduced for in situ monitoring of PbCl(2) concentration in a 120 MW(th) power plant using demolition wood as its main fuel. In addition to industrial applications, the method can provide information on chemical reaction kinetics of the intermediate species that can be utilized in reaction simulations. MDPI 2020-01-18 /pmc/articles/PMC7014508/ /pubmed/31963656 http://dx.doi.org/10.3390/s20020533 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Viljanen, Jan
Kalmankoski, Kim
Contreras, Victor
Sarin, Jaakko K.
Sorvajärvi, Tapio
Kinnunen, Hanna
Enestam, Sonja
Toivonen, Juha
Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species
title Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species
title_full Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species
title_fullStr Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species
title_full_unstemmed Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species
title_short Sequential Collinear Photofragmentation and Atomic Absorption Spectroscopy for Online Laser Monitoring of Triatomic Metal Species
title_sort sequential collinear photofragmentation and atomic absorption spectroscopy for online laser monitoring of triatomic metal species
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7014508/
https://www.ncbi.nlm.nih.gov/pubmed/31963656
http://dx.doi.org/10.3390/s20020533
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