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VOC Degradation in the Atmosphere by Nanophotocatalysts

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Disposal of Dangerous Chemicals in Urban Areas and Mega Cities

Abstract

The paper deals with a novel method for the destruction of VOCs in air. The method is based on usage of an aqueous colloidal solution of nanocarbon-metal oxides compositions in which titanium is chosen as the metal. The colloidal solution is sprayed in the air and under natural solar radiation the nanocomposition, as a photocatalyst, forms OH-radicals in the presence of water molecules from aqueous solution drops or natural moisture. Results of laboratory tests of the method conducted with benzene, toluene, trichloroethene (TCE), cis-dichloroethene and trans-dichloroethene (DCE) in a plexiglass box with dimensions of 2,000 × 1,000 × 1,000 mm are described. The concentrations of substances in the air in the experiments were within the range 1–15 mg/m3, and the concentration of sprayed solution of nanophotocatalysts was about 0.1 g/m3. The concentration of nanophotocatalysts in the colloidal solution was 100 mg/l, and the average size of the nanocompositions and aqueous solution drops were about 5 nm and 5 μm, respectively. The temperature of the air was 25°C and the air humidity was 7–15 g/m3. The air in the box was irradiated with a 60 W UV lamp during 15 min, giving degradation efficiencies of 90–99% for all compositions. Two to three hours were necessary to reach this degradation efficiency with irradiation of the box by sunlight. Concentrations of secondary products from the VOC degradation process were below detectable levels.

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References

  1. Bakar WAWA, Ali R, Othman MY (2010) Photocatalytic degradation and reaction pathway studies of chlorinated hydrocarbons in gaseous phase. Trans C Chem Chem Eng 17(1):1–14

    Google Scholar 

  2. Bertram AK, Ivanov AV, Hunter M, Molina LT, Molina MJ (2001) The reaction probability of OH on organic surfaces of tropospheric interest. J Phys Chem A 105:9415–9421

    Article  CAS  Google Scholar 

  3. Bryan CS, Michael OW (2005) Metal nanoparticle – conjugated polymer nanocomposites. Chem Commun 27:3375–3384

    Google Scholar 

  4. Claeys M, Graham B, Vas G, Wang W, Vermeylen R, Pashynska V, Cafmeyer J, Guyon P, Andreae MO, Artaxo P, Maenhaut W (2004) Formation of secondary organic aerosols through photooxidation of isoprene. Science 303(5661):1173–1176

    Article  CAS  Google Scholar 

  5. George IJ, Abbatt JPD (2010) Chemical evolution of secondary organic aerosol from OH-initiated heterogeneous oxidation. Atmos Chem Phys Discuss 10:3265–3300

    Article  Google Scholar 

  6. George IJ, Vlasenko A, Slowik JG, Broekhuizen K, Abbatt JPD (2007) Heterogeneous oxidation of saturated organic aerosols by hydroxyl radicals: uptake kinetics, condensed phase products, and particle size change. Atmos Chem Phys 7:4187–4201

    Article  CAS  Google Scholar 

  7. Gross S, Iannone SX, Xiao S, Bertram AK (2009) Reactive uptake studies of NO3 and N2O5 on alkenoic acid, alkanoate, and polyalcohol substrates to probe nighttime aerosol chemistry. Phys Chem Chem Phys 11:7792–7803

    Article  CAS  Google Scholar 

  8. Holzinger R, Millet DB, Williams B, Lee A, Kreisberg N, Hering SV, Jimenez J, Allan JD, Worsnop DR, Goldstein AH (2007) Emission, oxidation, and secondary organic aerosol formation of volatile organic compounds as observed at Chebogue Point, Nova Scotia. J Geophys Res 112:D10S24. doi:10.1029/2006JD007599

    Article  Google Scholar 

  9. Hong I (2006) VOCs degradation performance of TiO2 aerogel photocatalyst prepared in SCF drying. J Ind Eng Chem 12(6):918–925

    CAS  Google Scholar 

  10. Hsu WK, Terrones M, Hare JP, Terrones H, Kroto HW, Walton DRM (1996) Electrolytic formation of carbon nanostructures. Chem Phys Lett 262:161–166

    Article  CAS  Google Scholar 

  11. Jiang D, Zhao H, Zhang S, John R (2006) Comparition of photocatalytic degradation kinetic characteristics of different organic compounds at anatase TiO2 nanoporous film electrodes. J Photochem Photobiol A Chem 177(2–3):253–260

    Article  CAS  Google Scholar 

  12. Khaydarov RR, Khaydarov RA, Gapurova O (2009) Remediation of contaminated groundwater using nano-carbon colloids. In: Linkov I (ed) Nanomaterials: risk and benefits, NATO science for peace and security series C: environmental security. Springer, Dordrecht, pp 219–224

    Google Scholar 

  13. Khaydarov RA, Khaydarov RR, Gapurova O (2010) Water purification from metal ions using carbon nanoparticle-conjugated polymer nanocomposites. Water Res 44(6):1927–1933

    Article  CAS  Google Scholar 

  14. Kim YB, Ziemann PJ (2009) Chemistry of secondary organic aerosol formation from OH radical-initiated reactions of linear, branched, and cyclic alkanes in the presence of NOx. Aerosol Sci Technol 43:604–619

    Article  Google Scholar 

  15. Kim SB, Cha WS, Hong SC (2002) Photocatalytic degradation of gas-phase methanol and toluene using thin-film TiO2 photocatalyst. Kinetic study for the effect of initial concentration and photon flux. J Ind Eng Chem 8(2):162–167

    CAS  Google Scholar 

  16. Kim SB, Hwang HT, Hong SC (2002) Photocatalytic degradation of volatile organic compounds at the gas–solid interface of a TiO2 photocatalyst. Chemosphere 48(4):437–444

    Article  CAS  Google Scholar 

  17. Kim D, Hwang Y, Cheong SI, Lee JK, Hong D, Moon S, Lee JE, Kim SH (2005) Production and characterization of carbon nano colloid via one-step electrochemical method. J Nanopart Res 10(7):1121–1128

    Article  Google Scholar 

  18. Kleindienst TE, Lewandowski M, Offenberg JH, Jaoui M, Edney EO (2009) The formation of secondary organic aerosol from the isoprene + OH reaction in the absence of NOx. Atmos Chem Phys 9:6541–6558

    Article  CAS  Google Scholar 

  19. Kroll JH, Seinfeld JH (2008) Chemistry of secondary organic aerosol: formation and evolution of low-volatility organics in the atmosphere. Atmos Environ 42:3593–3624

    Article  CAS  Google Scholar 

  20. Kroll JH, Ng NL, Murphy SM, Flagan RC, Seinfeld JH (2005) Secondary organic aerosol formation from isoprene photooxidation under high-NOx conditions. Geophys Res Lett 32:L18808. doi:10.1029/2005GL023637

    Article  Google Scholar 

  21. Kroll JH, Smith JD, Che DL, Kessler SH, Worsnop DR, Wilson KP (2009) Measurement of fragmentation and functionalization pathways in the heterogeneous oxidation of oxidized organic aerosol. Phys Chem Chem Phys 11:8005–8014

    Article  CAS  Google Scholar 

  22. Oki K, Tsuchida S, Nishikiori H, Tanaka N, Fujii T (2003) Photocatalytic degradation of chlorinated ethenes. Int J Photoenergy 5:11–15

    Article  CAS  Google Scholar 

  23. Peckett JW, Trens P, Gougeon RD, Poppl A, Harris RK, Hudson MJ (2000) Electrochemically oxidised graphite: characterisation and some ion exchange properties. Carbon 38:345–353

    Article  CAS  Google Scholar 

  24. Presto AA, Hartz KEH, Donahue NM (2005) Secondary organic aerosol production from terpene ozonolysis. Effect of NOx concentration. Environ Sci Technol 39:7046–7054

    Article  CAS  Google Scholar 

  25. Smith JD, Kroll JH, Cappa CD, Che DL, Liu CL, Ahmed M, Leone SR, Worsnop DR, Wilson KR (2009) The heterogeneous reaction of hydroxyl radicals with sub-micron squalane particles: a model system for understanding the oxidative aging of ambient aerosols. Atmos Chem Phys 9:3209–3222

    Article  CAS  Google Scholar 

  26. Sopyan I (1996) An efficient TiO2 thin-film photocatalyst: photocatalytic properties in gas-phase acetaldehyde degradation. J Photochem Photobiol A Chem 98(1–2):79–86

    Article  CAS  Google Scholar 

  27. Tang WZ, An H (1995) UV/TiO2 photocatalytic oxidation of commercial dyes in aqueous solutions. Chemosphere 31:4157–4171

    Article  CAS  Google Scholar 

  28. Tuazon EC, Atkinson R (1990) A product study of the gas-phase reaction of methacrolein with the OH radical in the presence of NOx. Int J Chem Kinet 22:591–602

    Article  CAS  Google Scholar 

  29. Vlasenko A, George IJ, Abbatt JPD (2008) Formation of volatile organic compounds in the heterogeneous oxidation of condensed-phase organic films by gas-phase OH. J Phys Chem A 112:1552–1560

    Article  CAS  Google Scholar 

  30. Volkamer R et al (2006) Secondary organic aerosol formation from anthropogenic air pollution: rapid and higher than expected. Geophys Res Lett 33:L17811

    Article  Google Scholar 

  31. Yu H, Zhang K, Rossi C (2007) Theoretical study on photocatalytic oxidation of VOCs using nano-TiO2 photocatalyst. J Photochem Photobiol A Chem 188:65–73

    Article  CAS  Google Scholar 

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Correspondence to Rashid A. Khaydarov .

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Khaydarov, R.A., Khaydarov, R.R., Gapurova, O., Nasirova, N.K. (2013). VOC Degradation in the Atmosphere by Nanophotocatalysts. In: Barnes, I., Rudziński, K. (eds) Disposal of Dangerous Chemicals in Urban Areas and Mega Cities. NATO Science for Peace and Security Series C: Environmental Security. Springer, Dordrecht. https://doi.org/10.1007/978-94-007-5034-0_11

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