HR: 1340h
AN: A43C-1421 [Abstracts]
TI: Aerosol Angstrom Absorption Coefficient Comparisons during MILAGRO.
AU: * Marley, N A
EM: namarley@ualr.edu
AF: University of Arkansas at Little Rock, 2801 S. University Avenue, Little Rock, AR 72204,
United States
AU: Marchany-Rivera, A
EM: angierosy@gmail.com
AF: University of Arkansas at Little Rock, 2801 S. University Avenue, Little Rock, AR 72204,
United States
AU: Kelley, K L
EM: kxbrock@ualr.edu
AF: University of Arkansas at Little Rock, 2801 S. University Avenue, Little Rock, AR 72204,
United States
AU: Mangu, A
EM: axmangu@ualr.edu
AF: University of Arkansas at Little Rock, 2801 S. University Avenue, Little Rock, AR 72204,
United States
AU: Gaffney, J S
EM: jsgaffney@ualr.edu
AF: University of Arkansas at Little Rock, 2801 S. University Avenue, Little Rock, AR 72204,
United States
AB:
Measurements of aerosol absorption were obtained as part of the MAX-Mex component of the MILAGRO field
campaign at site T0 (Instituto Mexicano de Petroleo in Mexico City) by using a 7-channel aethalometer (Thermo-
Anderson) during the month of March, 2006. The absorption measurements obtained in the field at 370, 470, 520,
590, 660, 880, and 950 nm were used to determine the aerosol Angstrom absorption exponents by linear
regression. Since, unlike other absorbing aerosol species (e.g. humic like substances, nitrated PAHs), black
carbon absorption is relatively constant from the ultraviolet to the infrared with an Angstrom absorption exponent
of -1 (1), a comparison of the Angstrom exponents can indicate the presence of aerosol components with an
enhanced UV absorption over that expected from BC content alone. The Angstrom exponents determined from
the aerosol absorption measurements obtained in the field varied from – 0.7 to – 1.3 during the study and was
generally lower in the afternoon than the morning hours, indicating an increase in secondary aerosol formation
and photochemically generated UV absorbing species in the afternoon.
Twelve-hour integrated samples of fine atmospheric aerosols (<0.1micron) were also collected at site T0 and T1
(Universidad Technologica de Tecamac, State of Mexico) from 5 am to 5 pm (day) and from 5 pm to 5 am (night)
during the month of March 2006. Samples were collected on quartz fiber filters with high volume impactor
samplers. Continuous absorption spectra of these aerosol samples have been obtained in the laboratory from
280 to 900nm with the use of an integrating sphere coupled to a UV spectrometer (Beckman DU with a
Labsphere accessory). The integrating sphere allows the detector to collect and spatially integrate the total
radiant flux reflected from the sample and therefore allows for the measurement of absorption on highly reflective
or diffusely scattering samples. These continuous spectra have also been used to obtain the aerosol Angstrom
absorption exponents by linear regression over the entire UV-visible spectral range. These results are compared
to results obtained from the absorbance measurements obtained in the field. The differences in calculated
Angstrom absorption exponents between the field and laboratory measurements are attributed partly to the
differences in time resolution of the sample collection resulting in heavier particle pileup on the filter surface of
the 12-hour samples. Some differences in calculated results can also be attributed to the presence of narrow
band absorbers below 400 nm that do not fall in the wavelengths covered by the 7 wavelengths of the
aethalometer.
1. Marley, N.A., J.S. Gaffney, J.C. Baird, C.A. Blazer, P.J. Drayton, and J.E. Frederick, "The determination of
scattering and absorption coefficients of size-fractionated aerosols for radiative transfer calculations." Aerosol Sci.
Technol., 34, 535-549, (2001).
This work was conducted as part of the Department of Energy's Atmospheric Science Program as part of the
Megacity Aerosol Experiment – Mexico City during MILAGRO. This research was supported by the Office of
Science (BER), U.S. Department of Energy Grant No. DE-FG02-07ER64329. We also wish to thank Mexican
Scientists and students for their assistance from the Instituto Mexicano de Petroleo (IMP) and CENICA.
DE: 0305 Aerosols and particles (0345, 4801, 4906)
DE: 0345 Pollution: urban and regional (0305, 0478, 4251)
DE: 0368 Troposphere: constituent transport and chemistry
DE: 0394 Instruments and techniques
DE: 3359 Radiative processes
SC: Atmospheric Sciences [A]
MN: 2007 Fall Meeting