Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)

<p>A new cascade impactor has been developed with the arrangement of the classifying nozzles optimized for analysis of the collected particles by total reflection X-ray fluorescence (TXRF). TXRF offers detection limits in the range of a few picograms of absolute mass and therefore poses great...

Full description

Bibliographic Details
Main Authors: C. Crazzolara, A. Held
Format: Article
Language:English
Published: Copernicus Publications 2024-04-01
Series:Atmospheric Measurement Techniques
Online Access:https://amt.copernicus.org/articles/17/2183/2024/amt-17-2183-2024.pdf
_version_ 1797202824827764736
author C. Crazzolara
C. Crazzolara
A. Held
author_facet C. Crazzolara
C. Crazzolara
A. Held
author_sort C. Crazzolara
collection DOAJ
description <p>A new cascade impactor has been developed with the arrangement of the classifying nozzles optimized for analysis of the collected particles by total reflection X-ray fluorescence (TXRF). TXRF offers detection limits in the range of a few picograms of absolute mass and therefore poses great potential for the elemental analysis of heavy metals in aerosol particles. To fully exploit this high sensitivity, particles have to be collected in the effective analysis area of the TXRF instrument, which is often smaller than typical deposition patterns of commercial impactors or filter samplers. This is achieved by a novel compact arrangement of the classifying nozzles within a circular area of a diameter of less than 5 <span class="inline-formula">mm</span>. A decreasing density of the nozzle spacing from the inside to the outside of the nozzle cluster allows for constant cross-flow conditions, minimizing the mutual influence of the individual nozzles. The design of a multistage cascade impactor is presented to individually sample <span class="inline-formula">PM<sub>10</sub></span>, <span class="inline-formula">PM<sub>2.5</sub></span> and <span class="inline-formula">PM<sub>1</sub></span> size fractions. Considering the high sensitivity of TXRF analysis, constructive measures have been taken to prevent attrition of impactor material which might lead to methodical blank values. Experimental validation confirms that neither attrition nor cross-contamination can be observed. Furthermore, a new spin-coating method has been developed which makes it possible to apply a thin and defined adhesive layer of grease to the sample carrier with good repeatability. Application of the impactor in a case study at an urban site at Potsdamer Platz, Berlin, Germany, shows that sampling at a moderate volume flow rate of 5 <span class="inline-formula">L min<sup>−1</sup></span>, the particle mass collected in 30 <span class="inline-formula">min</span> or less is sufficient for reliable TXRF analysis of heavy metal concentrations (<span class="inline-formula">Fe</span>, <span class="inline-formula">Zn</span>, <span class="inline-formula">Cu</span>, <span class="inline-formula">Mn</span>, <span class="inline-formula">Pb</span> and <span class="inline-formula">Ni</span>) in ambient aerosol. This high time resolution enables snapshot sampling, e.g. to quantify variations in particle source strengths. Overall, the new impactor optimized for TXRF analysis bears great potential to improve the quantification of particulate trace metals and other elements in <span class="inline-formula">PM<sub>10</sub></span>, <span class="inline-formula">PM<sub>2.5</sub></span> and <span class="inline-formula">PM<sub>1</sub></span> with high time resolution.</p>
first_indexed 2024-04-24T08:09:35Z
format Article
id doaj.art-839c29d487054b5682228903d28d6aa8
institution Directory Open Access Journal
issn 1867-1381
1867-8548
language English
last_indexed 2024-04-24T08:09:35Z
publishDate 2024-04-01
publisher Copernicus Publications
record_format Article
series Atmospheric Measurement Techniques
spelling doaj.art-839c29d487054b5682228903d28d6aa82024-04-17T08:10:15ZengCopernicus PublicationsAtmospheric Measurement Techniques1867-13811867-85482024-04-01172183219410.5194/amt-17-2183-2024Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)C. Crazzolara0C. Crazzolara1A. Held2Environmental Chemistry and Air Research, Technische Universität Berlin, 10623 Berlin, DeutschlandBruker Nano GmbH, 12489 Berlin, DeutschlandEnvironmental Chemistry and Air Research, Technische Universität Berlin, 10623 Berlin, Deutschland<p>A new cascade impactor has been developed with the arrangement of the classifying nozzles optimized for analysis of the collected particles by total reflection X-ray fluorescence (TXRF). TXRF offers detection limits in the range of a few picograms of absolute mass and therefore poses great potential for the elemental analysis of heavy metals in aerosol particles. To fully exploit this high sensitivity, particles have to be collected in the effective analysis area of the TXRF instrument, which is often smaller than typical deposition patterns of commercial impactors or filter samplers. This is achieved by a novel compact arrangement of the classifying nozzles within a circular area of a diameter of less than 5 <span class="inline-formula">mm</span>. A decreasing density of the nozzle spacing from the inside to the outside of the nozzle cluster allows for constant cross-flow conditions, minimizing the mutual influence of the individual nozzles. The design of a multistage cascade impactor is presented to individually sample <span class="inline-formula">PM<sub>10</sub></span>, <span class="inline-formula">PM<sub>2.5</sub></span> and <span class="inline-formula">PM<sub>1</sub></span> size fractions. Considering the high sensitivity of TXRF analysis, constructive measures have been taken to prevent attrition of impactor material which might lead to methodical blank values. Experimental validation confirms that neither attrition nor cross-contamination can be observed. Furthermore, a new spin-coating method has been developed which makes it possible to apply a thin and defined adhesive layer of grease to the sample carrier with good repeatability. Application of the impactor in a case study at an urban site at Potsdamer Platz, Berlin, Germany, shows that sampling at a moderate volume flow rate of 5 <span class="inline-formula">L min<sup>−1</sup></span>, the particle mass collected in 30 <span class="inline-formula">min</span> or less is sufficient for reliable TXRF analysis of heavy metal concentrations (<span class="inline-formula">Fe</span>, <span class="inline-formula">Zn</span>, <span class="inline-formula">Cu</span>, <span class="inline-formula">Mn</span>, <span class="inline-formula">Pb</span> and <span class="inline-formula">Ni</span>) in ambient aerosol. This high time resolution enables snapshot sampling, e.g. to quantify variations in particle source strengths. Overall, the new impactor optimized for TXRF analysis bears great potential to improve the quantification of particulate trace metals and other elements in <span class="inline-formula">PM<sub>10</sub></span>, <span class="inline-formula">PM<sub>2.5</sub></span> and <span class="inline-formula">PM<sub>1</sub></span> with high time resolution.</p>https://amt.copernicus.org/articles/17/2183/2024/amt-17-2183-2024.pdf
spellingShingle C. Crazzolara
C. Crazzolara
A. Held
Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)
Atmospheric Measurement Techniques
title Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)
title_full Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)
title_fullStr Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)
title_full_unstemmed Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)
title_short Development of a cascade impactor optimized for size-fractionated analysis of aerosol metal content by total reflection X-ray fluorescence spectroscopy (TXRF)
title_sort development of a cascade impactor optimized for size fractionated analysis of aerosol metal content by total reflection x ray fluorescence spectroscopy txrf
url https://amt.copernicus.org/articles/17/2183/2024/amt-17-2183-2024.pdf
work_keys_str_mv AT ccrazzolara developmentofacascadeimpactoroptimizedforsizefractionatedanalysisofaerosolmetalcontentbytotalreflectionxrayfluorescencespectroscopytxrf
AT ccrazzolara developmentofacascadeimpactoroptimizedforsizefractionatedanalysisofaerosolmetalcontentbytotalreflectionxrayfluorescencespectroscopytxrf
AT aheld developmentofacascadeimpactoroptimizedforsizefractionatedanalysisofaerosolmetalcontentbytotalreflectionxrayfluorescencespectroscopytxrf