Geophysical Research Letters · 2015 · 79 citations · 46 references
EngineeringBrown CarbonAir QualityAbsorption SpectroscopyChemistryAbsorption CharacterizationChemical EngineeringEnvironmental ChemistryAerosol TransportAerosol SamplingEnvironmental Analytical ChemistryAnalytical ChemistryBiomass UtilizationCarbon SequestrationAerosol FormationBiomass BurningCarbonizationEnvironmental EngineeringMass SpectrometryBrc AbsorptionActivated CarbonAir PollutionSize Separation MethodBiomass Characterization
Abstract The majority of brown carbon (BrC) in atmospheric aerosols is derived from biomass burning (BB) and is primarily composed of extremely low volatility organic carbons. We use two chromatographic methods to compare the contribution of large and small light‐absorbing BrC components in aged BB aerosols with UV‐vis absorbance detection: (1) size exclusion chromatography (SEC) and (2) reverse phase high‐performance liquid chromatography. We observe no evidence of small molecule absorbers. Most BrC absorption arises from large molecular weight components (>1000 amu). This suggests that although small molecules may contribute to BrC absorption near the BB source, analyses of aerosol extracts should use methods selective to large molecular weight compounds because these species may be responsible for long‐term BrC absorption. Further characterization with electrospray ionization mass spectrometry (MS) coupled to SEC demonstrates an underestimation of the molecular size determined through MS as compared to SEC.
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Warming and Earlier Spring Increase Western U.S. Forest Wildfire Activity
A. L. Westerling, Hugo G. Hidalgo, Daniel R. Cayan et al. · Science · 2006 · 5.2K citations · Full text