( ) ( ) S, N-TiO 2. CN - TiO 2 ) 1 US Public Health Service. 2 Advanced Oxidation Processes (AOPs)

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... - - Sadeghi@skums.ac.ir () ( ) - - - (// // ) - S, N-TiO 2. ) ( )... ( ppm -. SEM XRD. ppm. N S DRS EDX S, N-TiO 2 S, N-TiO 2.. : CN - /.[-].[] TiO 2 ) -...[-] CN -.[ ] / / 2 Advanced Oxidation Processes (AOPs) 1 US Public Health Service 42

... TiO 2.[ ]. TiO 2.[ ] (F S C N).[ ] - ( ). TiO 2 TiO 2. S,N-TiO 2 CN - ppm ppm. - --. GFL S,N-TiO 2 TiO 2 TiO 2.[] -. 7 Merck 8 Deionized Water (DI) 9 Tetrabutyl orthotitanate (TBOT) (ZnO TiO. CN - 2 TiO 2. TiO 2.[-] TiO 2. TiO 2 + - (h ) /(e ). CN -..[] ( ).( ) ) - CO 2 NO 3.(.[] ( ) CN CN (). 2CN (CN) 2 ( CN) 2 + 2OH CN + CNO + H2O + CNO + 8OH + 8H NO2 + CO2 + 4H 2O () () () CNO - CN - -.[ ] NO 3 CO 2 TiO 2 1 Anatase 2 Rutile 3 Valance Band 4 Conduction Band 5 Cyanogen ((CN)2) 6 Cyanate (CNO - ) 43

... θ (/) K S β λ.[] TiO 2 Zeiss EVO 15. -- CN -.... / TBOT /... / ph. / / /.. TiO 2...... -- UV-1800 / [] () () : - () () CN - () () HCN CN -.. W... E g 1239.8 = λ () λ ev E g. TiO 2 θ=-⁰ Philips X pert Pro MPD ). ( = Kλ S β cos θ () 3 Scanning Electron Microscopy (SEM) 4 Energy Dispersive X-ray (EDX) 1 Shimadzu 2 Polymorphe 44

... S, N-TiO 2 XRD -..[] - []. S, N-TiO 2 () TiO 2 () SEM - S,N-TiO 2 EDX.. e - /h + CN -.[ ] CN - ppm ph.. HCN. NaOH CN - CN -.[] CN (C0 C) photocatalytic destruction (%) = * 100 C 0 (). CN - CCN - C 0.. - -- S, N-TiO 2 XRD. - TiO 2.[]. S,N-TiO 2. -. TiO 2 S, N- TiO 2 SEM 1 Hydrogen Cyanide (HCN) 2 p-dimethylaminobenzalrhodanine 3 Joint Committee on Powder Diffraction Standards (JCPDS) 45

... CN - -- CN - TiO 2 / / / /. ppm CN -.. CN - TiO 2 / CN -.. / TiO 2 ] -.[. Tu(/ g) TiO 2 Tu CN - - S, N-TiO CN - 2 ( ) ppm CN -.. ph CN - / /. ppm CN - CN -. CN - EDX - -- TiO 2 DRS (Tu = / g) TiO 2... / ev ( / / /) TiO 2. / / / ev TiO 2. ] TiO 2 p p.[. TiO 2 DRS - 46

... /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ CN - - /±/ /±/ /±/ /±/ (ppm) (h) CN - - (ppm) (h) /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/ /±/. ( ) ppm S, N-TiO 2. S, N-TiO 2. -..[ ] - S, N-TiO 2. - : ( ) EDX / DRS. TiO 2 XRD. S, N-TiO 2 SEM - 1. APHA, WEF. (2012). Standard methods for the examination of water and wastewater, APHA, AWWA, WEF, USA. 2. Augugliaro, V., Loddo, V., Marci, G., Palmisano, L., and Lopez-Munoz, M. J. (1997). Photocatalytic oxidation of cyanides in aqueous titanium dioxide suspensions. Journal of Catalysis, 166(2), 272-283. 47

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... 20. Miranda-Garcia, N., Suarez, S., Sanchez, B., Coronado, J. M., Malato, S., and Maldonado, M. J. (2011). Photocatalytic degradation of emerging contaminants in municipal wastewater treatment plant effluents using immobilized TiO 2 in a solar pilot plant. Applied Catalysis B: Environmental, 103(3-4), 294-301. 21. Mohamed, R. M., and Mkhalid, I. A. (2010). The effect of rare earth dopants on the structure, surface texture and photocatalytic properties of TiO 2 SiO 2 prepared by sol gel method. Journal of Alloys and Compounds, 501(1), 143-147. 22. Murgolo, S., Petronella, F., Ciannarella, R., Comparelli, R., Agostiano, A., Curri, M. L., and Mascolo, G. (2014). UV and solar-based photocatalytic degradation of organic pollutants by nano-sized TiO 2 grown on carbon nanotubes. Catalysis Today, 240A, 114-124. 23. Pedraza-Avella, J. A., Acevedo-Pen, P., and Pedraza-Rosas, J. E. (2008). Photocatalytic oxidation of cyanide on TiO 2 : An electrochemical approach. Catalysis Today, 133-135, 611-618. 24. Prieto-Rodriguez, L., Miralles-Cuevas, S., Oller, J., Aguera, A., Puma, G. L., and Malato, S. (2012). Treatment of emerging contaminants in wastewater treatment plants (WWTP) effluents by solar photocatalysis using low TiO 2 concentrations. Journal of Hazardous Material, 211-212, 131-137. 25. Qin, W., Qi, J., Chen, Y., Li, H., and Wu, X. (2013). Visible light drived N, S -codoped TiO 2 photocatalysts grown by microplasma oxidation method. International Journal of Electrochemical Science, 8(6), 7680-7686. 26. Rauf, M. A., Meetani, M. A., and Hisaindee, S. (2011). An overview on the photocatalytic degradation of azo dyes in the presence of TiO 2 doped with selective transition metals. Desalination, 276(1-3), 13-27. 27. Rengifo-Herrera, J. A., and Pulgarin, C. (2010). Photocatalytic activity of N, S co-doped and N-doped commercial anatasa TiO 2 powders towards phenol oxidation and E. coli inactivation under simulated solar light irradiation. Solar Energy, 84(1), 37-43. 28. Sousa, M. A., Gonçalves, C., Vilar, V. J. P., Boaventura, R. A. R., and Alpendurada, M. F. (2012). Suspended TiO 2 -assisted photocatalytic degradation of emerging contaminants in a municipal WWTP effluent using a solar pilot plant with CPCs. Chemical Engineering Journal, 198-199, 301-309. 29. Sugihara, M. N., Moeller, D., Paul, T., and Strathmann, T. J. (2013). TiO 2 -photocatalyzed transformation of the recalcitrant X-ray contrast agent diatrizoate. Applied Catalysis B: Environmental, 129, 114-122. 30. Szpyrkowicz, L., Kaul, S. N., Molga, E., and DeFaveri, M. (2000). Comparison of the performance of a reactor equpped with a Ti/Pt and an SS anode for simultaneous cyanide removal and copper recovery. Electrochimica Acta, 46(2-3), 381-387. 31. Wang, D., Yu, B., Zhou, F., Wang, C., and Liu, W. (2009). Synthesis and characterization of anatase TiO 2 nanotubes and their use in dye-sensitized solar cells. Materials Chemistry and Physics, 113, 602-606. 32. Wang, J., Li, H., Li, H., and Zou, C. (2010). Mesoporous TiO 2-x A y (A = N, S) as a visible-light-response photocatalyst. Solid State Sciences, 12(4), 490-497. 33. Yeber, M. C., Soto, C., Riveros, R., Navarrete, J., and Vidal, G. (2009). Optimization by factorial design of copper (II) and toxicity removal using a photocatalytic process with TiO2 asemiconductor. Chemical Engineering Journal, 152(1), 14-19. 49