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  4. Changes in Light Absorptivity of Molecular Weight Separated Brown Carbon Due to Photolytic Aging
 
research article

Changes in Light Absorptivity of Molecular Weight Separated Brown Carbon Due to Photolytic Aging

Wong, J. P. S.
•
Nenes, Athanasios  
•
Weber, R. J.
2017
Environmental Science & Technology

Brown carbon (BrC) consists of those organic compounds in atmospheric aerosols that absorb solar radiation and may play an important role in planetary radiative forcing and climate. However, little is known about the production and loss mechanisms of BrC in the atmosphere. Here, we study how the light absorptivity of BrC from wood smoke and secondary BrC generated from the reaction of ammonium sulfate with methylglyoxal changes under photolytic aging by UVA radiation in the aqueous phase. Owing to its chemical complexity, BrC is separated by molecular weight using size exclusion chromatography, and the response of each molecular weight fraction to aging is studied. Photolytic aging induced significant changes in the light absorptivity of BrC for all molecular weight fractions; secondary BrC was rapidly photoblenched, whereas for wood smoke BrC, both photoenhancement and photobleaching were observed. Initially, large biomass burning BrC molecules were rapidly photoenhanced, followed by slow photolysis. As a result, large BrC molecules dominated the total light absorption of aged biomass burning BrC. These experimental results further support earlier observations that large molecular weight BrC compounds from biomass burning can be relatively long-lived components in atmospheric aerosols, thus more likely to have larger impacts on aerosol radiative forcing and could serve as biomass burning tracers. © 2017 American Chemical Society.

  • Details
  • Metrics
Type
research article
DOI
10.1021/acs.est.7b01739
Author(s)
Wong, J. P. S.
Nenes, Athanasios  
Weber, R. J.
Date Issued

2017

Publisher

American Chemical Society

Published in
Environmental Science & Technology
Volume

51

Start page

8414

End page

8421

Subjects

Aerosols

•

Atmospheric chemistry

•

Atmospheric radiation

•

Atmospheric thermodynamics

•

Biomass

•

Chromatography

•

Electromagnetic wave absorption

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Light absorption

•

Molecular weight

•

Molecules

•

Photobleaching

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Photolysis

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Size exclusion chromatography

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Aerosol radiative forcing

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Ammonium Sulfate

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Chemical complexity

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Molecular weight fraction

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Photoenhancement

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Photolytic aging

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Radiative forcings

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Total light absorption

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Atmospheric aerosols

•

ammonium sulfate

•

brown carbon

•

carbon

•

industrial chemical

•

methylglyoxal

•

unclassified drug

•

absorption

•

aerosol

•

ammonium sulfate

•

biomass burning

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brown carbon

•

light availability

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organic compound

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photolysis

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radiative forcing

•

smoke

•

solar radiation

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tracer

•

aging

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Article

•

biomass

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bleaching

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chromatophore

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controlled study

•

light absorption

•

molecular weight

•

photolysis

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radiative forcing

•

size exclusion chromatography

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smoke

•

static electricity

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ultraviolet A radiation

•

aerosol

•

atmosphere

•

molecular weight

•

Aerosols

•

Atmosphere

•

Biomass

•

Carbon

•

Molecular Weight

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LAPI  
Available on Infoscience
October 15, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/148870
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