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Spectroscopic Analysis of Organic Matters Derived from Urban Atmospheric Aerosols
Corresponding Author(s) : A.V. Stepakov
Asian Journal of Chemistry,
Vol. 31 No. 7 (2019): Vol 31 Issue 7
Abstract
The composition of organic matter derived from PM2.5 fraction of urban aerosols collected in Saint-Petersburg during the annual cycle was investigated by 1H NMR, 13C NMR and IR spectroscopies. It was found that the composition of organic fraction varies slightly with the seasons. The main organic components of aerosol extracts are aliphatic oxygen-containing compounds (such as derivatives of carboxylic acids and esters), whose content is maximum in winter samples. Aromatic compounds are present in aerosol extracts in negligible quantities. The results showed a significant contribution of the process of combustion of automotive fuel in the formation of low molecular weight organic compounds that are present in the composition of urban aerosol.
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References
R.M. Silverstein, G.C. Bassler and T.C. Morril, Spectrometric Identification of Organic Compounds, Wiley: New York, edn 5, p. 430 (1991).
S. Takahama, G. Ruggeri and A.M. Dillner, Atmos. Meas. Techn., 9, 3429 (2016); https://doi.org/10.5194/amt-9-3429-2016.
European Environment Agency, Status of Black Carbon Monitoring in Ambient Air in Europe, Technical Report Nº18 (2013).
E. Tagliavini, F. Moretti, S. Decesari, M.C. Facchini, S. Fuzzi and W. Maenhaut, Atmos. Chem. Phys., 6, 1003 (2006); https://doi.org/10.5194/acp-6-1003-2006.
R.-J. Huang, J. Cao, Y. Chen, L. Yang, J. Shen, Q. You, K. Wang, C. Lin, W. Xu, B. Gao, Y. Li, Q. Chen, T. Hoffmann, C.D. O'Dowd, M. Bilde and M. Glasius, Atmos. Meas. Tech., 11, 3447 (2018); https://doi.org/10.5194/amt-11-3447-2018.
Air Quality Guidelines, Global Update 2005, Particulate Matter, Ozone, Nitrogen Dioxide and Sulfur Dioxide, World Health Organization, DK2100 Copenhagen, Denmark (2006).
E. Samoli, R. Peng, T. Ramsay, M. Pipikou, G. Touloumi, F. Dominici, R. Burnett, A. Cohen, D. Krewski, J. Samet and K. Katsouyanni, Environ. Health Perspect., 116, 1480 (2008); https://doi.org/10.1289/ehp.11345.
R. Beelen, G. Hoek, P.A. van den Brandt, R.A. Goldbohm, P. Fischer, L.J. Schouten, M. Jerrett, E. Hughes, B. Armstrong and B. Brunekreef, Environ. Health Perspect., 116, 196 (2008); https://doi.org/10.1289/ehp.10767.
D. Krewski, M. Jerrett, R.T. Burnett, R. Ma, E. Hughes, Y. Shi, M.C. Turner, C.A. Pope III, G. Thurston, E.E. Calle, M.J. Thun, B. Beckerman, P. DeLuca, N. Finkelstein, K. Ito, D.K. Moore, K.B. Newbold, T. Ramsay, Z. Ross, H. Shin and B. Tempalski, Res. Rep. Health Eff. Inst., 140, 5 (2009).
C.A. Pope III, R.T. Burnett, M.J. Thun, E.E. Calle, D. Krewski, K. Ito and G.D. Thurston, JAMA, 287, 1132 (2002); https://doi.org/10.1001/jama.287.9.1132.
Y.-F. Xing, Y.-H. Xu, M.-H. Shi and Y.-X. Lian, J. Thorac. Dis., 8, E69 (2016); https://doi.org/10.3978/j.issn.2072-1439.2016.01.19.
X. Zhang, J. Sun, Y. Wang, W. Li, Q. Zhang, W. Wang, J. Quan, G. Cao, J. Wang, Y. Yang and Y. Zhang, Chinese Sci. Bull., 58, 1178 (2013); https://doi.org/10.1360/972013-150.
E. Samoli, A. Analitis, G. Touloumi, J. Schwartz, H.R. Anderson, J. Sunyer, L. Bisanti, D. Zmirou, J.M. Vonk, J.Pekkanen, P. Goodman, A. Paldy, C. Schindler and K. Katsouyanni, Environ. Health Perspect., 113, 88 (2005); https://doi.org/10.1289/ehp.7387.
D. Gao and S. Feng, F. Liao, F. Zhou, X. Wang, Ecotoxicol. Environ. Saf., 128, 67 (2016); https://doi.org/10.1016/j.ecoenv.2016.01.030.
G.-Y. Lin, G.-R. Lee, S.-F. Lin, Y.H. Hung, S.-W. Li, G.-J. Wu, H. Ye, W. Huang and C.-J. Tsai, Aerosol Air Qual. Res., 15, 2305 (2015); https://doi.org/10.4209/aaqr.2015.04.0271.
J. Wu, W. Xie, W. Li and J. Li, PLoS One, 10, e0142449 (2015); https://doi.org/10.1371/journal.pone.0142449.
An ill wind blows: The Current State and Impact of Cross-Border PM2.5. http://www.smfg.co.jp/english/responsibility/report/magazine/safe/pdf/safe101_2.pdf
R.M. Harrison, A.M. Jones and R.G. Lawrence, Atmos. Environ., 38, 4531 (2004); https://doi.org/10.1016/j.atmosenv.2004.05.022.
C.A. Pope III, J.B. Muhlestein, H.T. May, D.G. Renlund, J.L. Anderson and B.D. Horne, Circulation, 114, 2443 (2006); https://doi.org/10.1161/CIRCULATIONAHA.106.636977.
T. Lanki, J. Pekkanen, P. Aalto, R. Elosua, N. Berglind, D. D’Ippoliti, M. Kulmala, F. Nyberg, A. Peters, S. Picciotto, V. Salomaa, J. Sunyer, P. Tiittanen, S. von Klot and F. Forastiere, Occup. Environ. Med., 63, 844 (2006); https://doi.org/10.1136/oem.2005.023911.
I. Harrabi, V. Rondeau, J.F. Dartigues, J.F. Tessier and L. Filleul, Environ. Res., 101, 89 (2006); https://doi.org/10.1016/j.envres.2006.01.012.
M. Paglione, S. Saarikoski, S. Carbone, R. Hillamo, M.C. Facchini, E. Finessi, L. Giulianelli, C. Carbone, S. Fuzzi, F. Moretti, E. Tagliavini, E. Swietlicki, K. Eriksson Stenström, A.S.H. Prévot, P. Massoli, M. Canaragatna, D. Worsnop and S. Decesari, Atmos. Chem. Phys., 14, 5089 (2014); https://doi.org/10.5194/acp-14-5089-2014.
A.A. Uspenski and A.V. Stepakov, Asian J. Chem., 30, 1845 (2018); https://doi.org/10.14233/ajchem.2018.21341.
F. Arndt, Org. Synth., 15, 3 (1935); https://doi.org/10.15227/orgsyn.015.0003.
S. Decesari, M.C. Facchini, S. Fuzzi and E. Tagliavini, J. Geophys. Res., 105(D1), 1481 (2000); https://doi.org/10.1029/1999JD900950.
J.-D. Mao, L.S. Hundal, K. Schmidt-Rohr and M.L. Thompson, Environ. Sci. Technol., 37, 1751 (2003); https://doi.org/10.1021/es020821z.
E.R. Graber and Y. Rudich, Atmos. Chem. Phys., 6, 729 (2006); https://doi.org/10.5194/acp-6-729-2006.
R.M.B.O. Duarte, C.A. Pio and A.C. Duarte, Anal. Chim. Acta, 530, 7 (2005); https://doi.org/10.1016/j.aca.2004.08.049.
S. Pongpiacha, J. Appl. Sci. (Faisalabad), 14, 2967 (2014); https://doi.org/10.3923/jas.2014.2967.2977.