Determination of organic matter and organic matter to organic carbon ratios by infrared spectroscopy with application to selected sites in the IMPROVE network

被引:52
作者
Ruthenburg, Travis C. [1 ]
Perlin, Pesach C. [1 ]
Liu, Victor [1 ]
McDade, Charles E. [1 ]
Dillner, Ann M. [1 ]
机构
[1] Univ Calif Davis, Crocker Nucl Lab, Davis, CA 95616 USA
基金
美国国家科学基金会;
关键词
FTIR; Functional groups; Carboxylic acid; OM; OC; Organic matter; AEROSOL MASS-SPECTROMETRY; FUNCTIONAL-GROUPS; FTIR SPECTROSCOPY; AMBIENT AEROSOLS; UNITED-STATES; OM/OC RATIOS; ATR-FTIR; PM2.5; QUANTIFICATION; EMISSIONS;
D O I
10.1016/j.atmosenv.2013.12.034
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Mass of ambient particulate organic matter (OM) is often estimated by multiplying the organic carbon (OC) mass by a fixed factor that typically ranges from 1.4 to 1.8. In this paper, we develop a nondestructive, mid-infrared spectroscopic (MIR) technique to measure OM in PM2.5 collected on PTFE filters (commonly called "teflon" filters). MIR techniques measure absorption by functional groups within organic molecules; that is, carbon atoms bonded to oxygen (O) or hydrogen (H), O bonded to H and other elements bonded together in organic molecules that comprise OM. We developed laboratory standards of atmospherically relevant organic compounds as the basis for calibrating the MIR absorption to the moles of functional groups. A multivariate regression technique was used to develop calibrations for quantifying alkane CH, alcohol OH, carboxylic acid OH, and carbonyl, which likely comprise the bulk of OM in most ambient samples. OM is estimated as the sum of masses attributed to these functional groups. The precision of the OM measurement is 6.9 mu g (relative precision is 7%) and the minimum detection limit is 4.8 mu g, corresponding to an ambient concentrations of 0.21 mu g m(-3) and 0.15 mu g m(-3) respectively, for the sampling protocol used here. The method was employed to estimate OM, OC (estimated as the sum of the mass of carbon in the alkane CH and carbonyl functional groups) and OM/OC from one year of routinely collected filters at seven Interagency Monitoring of Protected Visual Environments (IMPROVE) sites. In the IMPROVE network, OC is measured using a thermal optical method and OM is estimated for regional haze tracking simply as 1.8 x DC. Using the MIR technique on one year of samples from 7 IMPROVE sites, the median OM/OC ratio was 1.69 with the 10th and 90th percentiles of 1.46 and 2.01. Phoenix, AZ had the lowest annual-median value of 1.56 and Mesa Verde, CO had the highest of 1.83. For more than half of the sites, the lowest monthly-median OM/OC ratio occurred in winter. The sample, site median and seasonal median OM/OC ratios obtained from MIR analysis indicate that a single estimate of OM/OC does not represent the observed variability in OM/OC. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:47 / 57
页数:11
相关论文
共 54 条
[11]   Studying the relationship between water-induced soil erosion and soil organic matter using Vis-NIR spectroscopy and geomorphological analysis: A case study in southern Italy [J].
Conforti, Massimo ;
Buttafuoco, Gabriele ;
Leone, Antonio P. ;
Aucelli, Pietro P. C. ;
Robustelli, Gaetano ;
Scarciglia, Fabio .
CATENA, 2013, 110 :44-58
[12]   A method to quantify organic functional groups and inorganic compounds in ambient aerosols using attenuated total reflectance FTIR spectroscopy and multivariate chemometric techniques [J].
Coury, Charity ;
Dillner, Ann M. .
ATMOSPHERIC ENVIRONMENT, 2008, 42 (23) :5923-5932
[13]   ATR-FTIR characterization of organic functional groups and inorganic ions in ambient aerosols at a rural site [J].
Coury, Charity ;
Dillner, Ann M. .
ATMOSPHERIC ENVIRONMENT, 2009, 43 (04) :940-948
[14]   VARIATIONS IN CHEMISTRY OF AIRBORN PARTICULATE MATERIAL WITH PARTICLE-SIZE AND TIME [J].
CUNNINGHAM, PT ;
JOHNSON, SA ;
YANG, RT .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1974, 8 (02) :131-135
[15]   Genetic components of milk Fourier-transform infrared spectra used to predict breeding values for milk composition and quality traits in dairy goats [J].
Dagnachew, B. S. ;
Meuwissen, T. H. E. ;
Adnoy, T. .
JOURNAL OF DAIRY SCIENCE, 2013, 96 (09) :5933-5942
[16]   Evolution of Asian aerosols during transpacific transport in INTEX-B [J].
Dunlea, E. J. ;
DeCarlo, P. F. ;
Aiken, A. C. ;
Kimmel, J. R. ;
Peltier, R. E. ;
Weber, R. J. ;
Tomlinson, J. ;
Collins, D. R. ;
Shinozuka, Y. ;
McNaughton, C. S. ;
Howell, S. G. ;
Clarke, A. D. ;
Emmons, L. K. ;
Apel, E. C. ;
Pfister, G. G. ;
van Donkelaar, A. ;
Martin, R. V. ;
Millet, D. B. ;
Heald, C. L. ;
Jimenez, J. L. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (19) :7257-7287
[17]   Analytical Determination of the Aerosol Organic Mass-to-Organic Carbon Ratio [J].
El-Zanan, Hazern S. ;
Zielinska, Barbara ;
Mazzoleni, Lynn R. ;
Hansen, D. Alan .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2009, 59 (01) :58-69
[18]   Secondary particulate matter in the United States: Insights from the particulate matter supersites program and related studies [J].
Fine, Philip M. ;
Sioutas, Constantinos ;
Solomon, Paul A. .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2008, 58 (02) :234-253
[19]   Characterization of organic ambient aerosol during MIRAGE 2006 on three platforms [J].
Gilardoni, S. ;
Liu, S. ;
Takahama, S. ;
Russell, L. M. ;
Allan, J. D. ;
Steinbrecher, R. ;
Jimenez, J. L. ;
De Carlo, P. F. ;
Dunlea, E. J. ;
Baumgardner, D. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (15) :5417-5432
[20]   Seasonal composition of remote and urban fine particulate matter in the United States [J].
Hand, J. L. ;
Schichtel, B. A. ;
Pitchford, M. ;
Malm, W. C. ;
Frank, N. H. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2012, 117