Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic ∕ inorganic particles

<p>Scanning transmission X-ray microscopy coupled with near-edge X-ray absorption and fine structure (STXM-NEXAFS) spectroscopy can be used to characterize the morphology and composition of aerosol particles. Here, two inorganic&thinsp;<span class="inline-formula">∕</spa...

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Main Authors: M. Fraund, T. Park, L. Yao, D. Bonanno, D. Q. Pham, R. C. Moffet
Format: Article
Language:English
Published: Copernicus Publications 2019-03-01
Series:Atmospheric Measurement Techniques
Online Access:https://www.atmos-meas-tech.net/12/1619/2019/amt-12-1619-2019.pdf
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author M. Fraund
T. Park
L. Yao
D. Bonanno
D. Q. Pham
R. C. Moffet
R. C. Moffet
author_facet M. Fraund
T. Park
L. Yao
D. Bonanno
D. Q. Pham
R. C. Moffet
R. C. Moffet
author_sort M. Fraund
collection DOAJ
description <p>Scanning transmission X-ray microscopy coupled with near-edge X-ray absorption and fine structure (STXM-NEXAFS) spectroscopy can be used to characterize the morphology and composition of aerosol particles. Here, two inorganic&thinsp;<span class="inline-formula">∕</span>&thinsp;organic systems are used to validate the calculation of organic volume fraction (OVF) and determine the level of associated error by using carbon K-edge STXM data at 278, 285.4, 288.6, and 320&thinsp;eV. Using the mixture of sodium chloride and sucrose as one system and ammonium sulfate and sucrose as another, three solutions were made with <span class="inline-formula">10:1</span>, <span class="inline-formula">1:1</span>, and <span class="inline-formula">1:10</span> mass ratios (inorganic to organic). The OVFs of the organic-rich aerosols of both systems deviated from the bulk OVF by less than 1%, while the inorganic-rich aerosols deviated by approximately 1&thinsp;%. Aerosols from the equal mass mixture deviated more (about 4&thinsp;%) due to thick inorganic regions exceeding the linear range of Beer's law. These calculations were performed after checking the data for poor image alignment, defocusing issues, and particles too thick to be analyzed. The potential for systematic error in the OVF calculation was also tested by assuming the incorrect composition. There is a small (about 0.5&thinsp;%) OVF difference if the organic is erroneously assumed to be adipic acid rather than the known organic, sucrose. A much larger difference (up to 25&thinsp;%) is seen if sodium chloride is assumed instead of ammonium sulfate. These results show that the OVF calculations are fairly insensitive to the organic while being much more sensitive to the choice of inorganic.</p>
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spelling doaj.art-0ce62dfa5d594119817d1237f7cc7e622022-12-21T19:17:50ZengCopernicus PublicationsAtmospheric Measurement Techniques1867-13811867-85482019-03-01121619163310.5194/amt-12-1619-2019Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particlesM. Fraund0T. Park1L. Yao2D. Bonanno3D. Q. Pham4R. C. Moffet5R. C. Moffet6Department of Chemistry, University of the Pacific, Stockton, CA 95211, USADepartment of Chemistry, University of the Pacific, Stockton, CA 95211, USADepartment of Chemistry, Beijing Normal University, Beijing, 100875, ChinaDepartment of Chemistry, University of the Pacific, Stockton, CA 95211, USADepartment of Chemistry, University of the Pacific, Stockton, CA 95211, USADepartment of Chemistry, University of the Pacific, Stockton, CA 95211, USAcurrent address: Sonoma Technology, Petaluma, CA 94954, USA<p>Scanning transmission X-ray microscopy coupled with near-edge X-ray absorption and fine structure (STXM-NEXAFS) spectroscopy can be used to characterize the morphology and composition of aerosol particles. Here, two inorganic&thinsp;<span class="inline-formula">∕</span>&thinsp;organic systems are used to validate the calculation of organic volume fraction (OVF) and determine the level of associated error by using carbon K-edge STXM data at 278, 285.4, 288.6, and 320&thinsp;eV. Using the mixture of sodium chloride and sucrose as one system and ammonium sulfate and sucrose as another, three solutions were made with <span class="inline-formula">10:1</span>, <span class="inline-formula">1:1</span>, and <span class="inline-formula">1:10</span> mass ratios (inorganic to organic). The OVFs of the organic-rich aerosols of both systems deviated from the bulk OVF by less than 1%, while the inorganic-rich aerosols deviated by approximately 1&thinsp;%. Aerosols from the equal mass mixture deviated more (about 4&thinsp;%) due to thick inorganic regions exceeding the linear range of Beer's law. These calculations were performed after checking the data for poor image alignment, defocusing issues, and particles too thick to be analyzed. The potential for systematic error in the OVF calculation was also tested by assuming the incorrect composition. There is a small (about 0.5&thinsp;%) OVF difference if the organic is erroneously assumed to be adipic acid rather than the known organic, sucrose. A much larger difference (up to 25&thinsp;%) is seen if sodium chloride is assumed instead of ammonium sulfate. These results show that the OVF calculations are fairly insensitive to the organic while being much more sensitive to the choice of inorganic.</p>https://www.atmos-meas-tech.net/12/1619/2019/amt-12-1619-2019.pdf
spellingShingle M. Fraund
T. Park
L. Yao
D. Bonanno
D. Q. Pham
R. C. Moffet
R. C. Moffet
Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particles
Atmospheric Measurement Techniques
title Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particles
title_full Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particles
title_fullStr Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particles
title_full_unstemmed Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particles
title_short Quantitative capabilities of STXM to measure spatially resolved organic volume fractions of mixed organic&thinsp;∕&thinsp;inorganic particles
title_sort quantitative capabilities of stxm to measure spatially resolved organic volume fractions of mixed organic thinsp thinsp inorganic particles
url https://www.atmos-meas-tech.net/12/1619/2019/amt-12-1619-2019.pdf
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