Nanoscale Chemical Imaging of Soot and Brown Carbon Components in Individual Atmospheric Particles

Abstract Biomass-burning aerosols contain complex mixtures of soot carbon (SC), brown carbon (BrC), organic carbon (OC), and inorganic (IN) constituents whose spatial distributions within individual particles strongly influence aerosol optical properties, atmospheric chemistry, and climate impacts. Scanning transmission X-ray microscopy (STXM) coupled with near-edge X-ray absorption fine structure spectroscopy (STXM/NEXAFS) is widely used to characterize the composition and mixing state of individual particles; however, existing approaches cannot explicitly distinguish SC from BrC because both exhibit strong aromatic π*C═C absorption at 285.4 eV. Here, a novel X-ray spectromicroscopic method at the carbon K-edge is introduced to resolve SC and BrC at the nanoscale within individual particles. The approach exploits differences between the aromatic π*C═C transition at 285.4 eV and the soot-specific σ*Graphitic-like(GL) transition at 307.0 eV. Analysis of STXM/NEXAFS spectra of biomass-burning particles, laboratory-generated BrC proxies, tar balls, and soot reference particles demonstrates that the relative intensities of these transitions provide a robust basis for differentiating SC and BrC. An integrated peak ratio and a simplified four-energy Soot Index (SI) were developed to classify particle components and generate spatially resolved maps of SC, BrC, OC, and IN at the nanoscale. The SI reproduces classifications obtained from full spectral deconvolution while enabling rapid, pixel-resolved chemical imaging. Application of this method reveals substantial variability in the internal distributions of SC and BrC within biomass-burning particles and demonstrates that conventional STXM mapping approach frequently classifies BrC-rich regions as elemental carbon. The new analytical framework expands the capabilities of X-ray spectromicroscopy for atmospheric aerosol characterization and provides improved particle-resolved constraints on aerosol composition, mixing state, and morphology.

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Publication Details

Journal
Analytical Chemistry
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.analchem.6c04225
Primary Topic
Atmospheric chemistry and aerosols
Type
article
Field-Weighted Citation Impact
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article

Nanoscale Chemical Imaging of Soot and Brown Carbon Components in Individual Atmospheric Particles

Alexander Laskin, Matthew Fraund, Matthew A. Marcus, Kyounglim Kang et al.
Analytical Chemistry
Atmospheric chemistry and aerosols
article

Nanoscale Chemical Imaging of Soot and Brown Carbon Components in Individual Atmospheric Particles

Alexander Laskin, Matthew Fraund, Matthew A. Marcus, Kyounglim Kang, Ryan C. Moffet, Temitope Olayemi, Seth Koloski, Steven A. L. Sharpe, Julius Ese
article en

Abstract

Abstract Biomass-burning aerosols contain complex mixtures of soot carbon (SC), brown carbon (BrC), organic carbon (OC), and inorganic (IN) constituents whose spatial distributions within individual particles strongly influence aerosol optical properties, atmospheric chemistry, and climate impacts. Scanning transmission X-ray microscopy (STXM) coupled with near-edge X-ray absorption fine structure spectroscopy (STXM/NEXAFS) is widely used to characterize the composition and mixing state of individual particles; however, existing approaches cannot explicitly distinguish SC from BrC because both exhibit strong aromatic π*C═C absorption at 285.4 eV. Here, a novel X-ray spectromicroscopic method at the carbon K-edge is introduced to resolve SC and BrC at the nanoscale within individual particles. The approach exploits differences between the aromatic π*C═C transition at 285.4 eV and the soot-specific σ*Graphitic-like(GL) transition at 307.0 eV. Analysis of STXM/NEXAFS spectra of biomass-burning particles, laboratory-generated BrC proxies, tar balls, and soot reference particles demonstrates that the relative intensities of these transitions provide a robust basis for differentiating SC and BrC. An integrated peak ratio and a simplified four-energy Soot Index (SI) were developed to classify particle components and generate spatially resolved maps of SC, BrC, OC, and IN at the nanoscale. The SI reproduces classifications obtained from full spectral deconvolution while enabling rapid, pixel-resolved chemical imaging. Application of this method reveals substantial variability in the internal distributions of SC and BrC within biomass-burning particles and demonstrates that conventional STXM mapping approach frequently classifies BrC-rich regions as elemental carbon. The new analytical framework expands the capabilities of X-ray spectromicroscopy for atmospheric aerosol characterization and provides improved particle-resolved constraints on aerosol composition, mixing state, and morphology.

Analytical Chemistry
University of Minnesota (US), Lawrence Berkeley National Laboratory (US), Purdue University West Lafayette (US), University of Minnesota System (US), ABS Consulting (United States) (US), Sciences, Philosophie, Histoire (FR)
Climate action
Openalex Percentile: Top 15%
Atmospheric chemistry and aerosols
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