In situ aerosol acidity measurements using a UV-Visible micro-spectrometer and its application to the ambient air

被引:16
作者
Jang, Myoseon [1 ]
Sun, Shiqi [1 ]
Winslow, Ryan [1 ]
Han, Sanghee [1 ]
Yu, Zechen [1 ]
机构
[1] Univ Florida, Dept Environm Engn Sci, POB 116450, Gainesville, FL 32611 USA
基金
美国国家科学基金会; 新加坡国家研究基金会;
关键词
BLACK CARBON; HETEROGENEOUS REACTIONS; THERMODYNAMIC MODEL; PARTICULATE MATTER; SOA FORMATION; PARTICLE; PH; SULFATE; WATER; HNO3;
D O I
10.1080/02786826.2020.1711510
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
An in situ analytical method was demonstrated to measure the proton concentration ([H+](C-RUV)) of an aerosol particle by using colorimetry integrated with a Reflectance UV-Visible spectrometer (C-RUV). Acidic particles comprising ammonium, sulfate, and water were generated in a flow tube under varying humidity and employed to calibrate the method using the inorganic thermodynamic models (i.e., E-AIM and ISORROPIA). The predictive [H+](C-RUV) equation derived using strongly acidic compositions was then extended to ammonia-rich aerosols, which were lacking in the database of the thermodynamic models. The predictive [H+](C-RUV) equation was also expanded to aerosols composed of sodium, ammonium, and sulfate. [H+](C-RUV) generally agrees with both E-AIM predicted [H+] and ISORROPIA predicted [H+] for highly acidic aerosols, or aerosols at high humidity. For ammonia-rich aerosols under low humidity, [H+](C-RUV) disagrees with that predicted from inorganic thermodynamic models. C-RUV was feasible for ambient aerosols because colorimetry is specific to aerosol acidity. Most aerosols collected at the University of Florida between 2018 and 2019 were acidic. Sodium ions appeared during the spring and summer, as coastal sea breezes traveled inland. The concentrations of ammonium and nitrate were high in the winter due to the phase partitioning of nitric acid and ammonia gases. The fraction of non-electrolytic dialkyl-organosulfate (diOS) to total sulfate is estimated by comparing the actual particle [H+] measured by C-RUV to the [H+] predicted using the inorganic composition and the inorganic thermodynamic models. The diOS fraction varied from 0% to 60% and was higher in the summer months when [H+] is high. Copyright (c) 2020 American Association for Aerosol Research
引用
收藏
页码:446 / 461
页数:16
相关论文
共 57 条
[1]   Simulating the SOA formation of isoprene from partitioning and aerosol phase reactions in the presence of inorganics [J].
Beardsley, Ross L. ;
Jang, Myoseon .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (09) :5993-6009
[2]   Predicting the relative humidities of liquid-liquid phase separation, efflorescence, and deliquescence of mixed particles of ammonium sulfate, organic material, and water using the organic-to-sulfate mass ratio of the particle and the oxygen-to-carbon elemental ratio of the organic component [J].
Bertram, A. K. ;
Martin, S. T. ;
Hanna, S. J. ;
Smith, M. L. ;
Bodsworth, A. ;
Chen, Q. ;
Kuwata, M. ;
Liu, A. ;
You, Y. ;
Zorn, S. R. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (21) :10995-11006
[3]   Sea spray aerosol chemical composition: elemental and molecular mimics for laboratory studies of heterogeneous and multiphase reactions [J].
Bertram, Timothy H. ;
Cochran, Richard E. ;
Grassian, Vicki H. ;
Stone, Elizabeth A. .
CHEMICAL SOCIETY REVIEWS, 2018, 47 (07) :2374-2400
[4]   LINEAR FREE ENERGY RELATIONSHIPS CONCERNING REACTION RATES IN MODERATELY CONCENTRATED MINERAL ACIDS [J].
BUNNETT, JF ;
OLSEN, FP .
CANADIAN JOURNAL OF CHEMISTRY, 1966, 44 (16) :1917-&
[5]   Separation of brown carbon from black carbon for IMPROVE and Chemical Speciation Network PM2.5 samples [J].
Chow, Judith C. ;
Watson, John G. ;
Green, Mark C. ;
Wang, Xiaoliang ;
Chen, L. -W. Antony ;
Trimble, Dana L. ;
Cropper, Paul M. ;
Kohl, Steven D. ;
Gronstal, Steven B. .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2018, 68 (05) :494-510
[6]  
Christ CharlesL., 1965, Solutions, minerals, and equilibria
[7]   Densities and Apparent Molar Volumes of Atmospherically Important Electrolyte Solutions. 2. The Systems H+-HSO4--SO42--H2O from 0 to 3 mol kg-1 as a Function of Temperature and H+-NH4+-HSO4--SO42--H2O from 0 to 6 mol kg-1 at 25 °C Using a Pitzer Ion Interaction Model, and NH4HSO4-H2O and (NH4)3H(SO4)2-H2O over the Entire Concentration Range [J].
Clegg, S. L. ;
Wexler, A. S. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2011, 115 (15) :3461-3474
[8]   Thermodynamic model of the system H+-NH4+-Na+-SO42--NB3--Cl--H2O at 298.15 K [J].
Clegg, SL ;
Brimblecombe, P ;
Wexler, AS .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (12) :2155-2171
[9]   Thermodynamic model of the system H+-NH4+-SO42--NO3--H2O at tropospheric temperatures [J].
Clegg, SL ;
Brimblecombe, P ;
Wexler, AS .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (12) :2137-2154
[10]   A novel model to predict the physical state of atmospheric H2SO4/NH3/H2O aerosol particles [J].
Colberg, CA ;
Luo, BP ;
Wernli, H ;
Koop, T ;
Peter, T .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2003, 3 :909-924