315
169. Gogate, P.R., Pandit, A.B., 2004. A review of imperative technologies for wastewater treatment II: hybrid methods. Adv. Environ. Res. 8, 553-597.
170. Pignatello, J.J., Oliveros, E., MacKay, A., 2006. Advanced oxidation processes for organic
contaminant destruction based on the Fenton reaction and related chemistry. Crit. Rev.
Environ. Sci. Technol. 36, 1-84.
171. De Laat, J., Le, G.T., Legube, B., 2004. A comparative study of the effects of chloride, sulphate and nitrate ions on the rates of decomposition of H 2 O 2 and organic compounds by
Fe(II)/H 2 O 2 and Fe(III)/H 2 O 2 . Chemosphere 55, 715-723.
172. Oliveros, E., Legrini, O., Hohl, M., Müller, T., Braun, A.M., 1997. Industrial wastewater
treatment: large scale development of a light-enhanced Fenton reaction. Chem. Eng. Proc.
36, 397-405.
173. Torrades, F., Pérez, M., Mansilla, H.D., Peral, J., 2003. Experimental design of Fenton and
photo-Fenton reactions for the treatment of cellulose bleaching effluents. Chemosphere 53,
1211-1220.
174. Dominguez, C., García, J., Pedraz, M.A., Torres, A., Galán, M.A., 1998. Photocatalytic oxidation of organic pollutants in water. Catal. Today 40, 85-101.
175. Marugán, J., Lopez-Muñoz, M.J., Gernjak, W., Malato, S., 2006. Fe/TiO 2 /pH interactions in
solar degradation of imidacloprid with TiO 2 /SiO 2 photocatalysts at pilot-plant scale. Ind. Eng.
Chem. Res. 45, 8900-8908.
176. Marugán, J., van Grieken, R., Sordo, C., Cruz, C., 2008. Kinetics of the photocatalytic disinfection of Escherichia coli suspensions. Appl. Catal. B: Environ. 82, 27-36.
177. Rincón, A.G., Pulgarin, C., 2006. Comparative evaluation of Fe
3+ and TiO 2 photoassisted
processes in solar photocatalytic disinfection of water. Appl. Catal. B: Environ. 63, 222-231.
178. Beltran-Heredia, J., Torregrosa, J., Dominguez, J.R., Peres, J.A., 2001. Comparison of the
degradation of p-hydroxybenzoic acid in aqueous solution by several oxidation processes.
Chemosphere 42, 351-359.
179. Torres, R.A., Nieto, J.I., Combet, E., Pétrier, C., Pulgarin, C., 2008. Influence of TiO 2 concentration on the synergistic effect between photocatalysis and high-frequency ultrasound for
organic pollutant mineralization in water. Appl. Catal. B: Environ. 80, 168-175.
180. Fujishima, A., Honda, K., 1972. Electrochemical photolysis of water at a semiconductor electrode. Nature 238, 37-38.
181. Hosono, E., Fujihara, S., Kakiuchi, K., Imai, H., 2004. Growth of submicrometer-scale rectangular parallelepiped rutile TiO2 films in aqueous TiCl 3 solutions under hydrothermal conditions. J. Am. Chem. Soc. 126, 7790-7791.
182. Kondo, Y., Yoshikawa, H., Awaga, K., Murayama, M., Mori, T., Sunada, K., Bandow, S.,
Iijima, S., 2008. Preparation, photocatalytic activities, and dye-sensitized solar-cell performance of submicron-scale TiO 2 hollow spheres. Langmuir 24, 547-550.
183. Wang, R., Hashimoto, K., Fujishima, A., Chikuni, M., Kojima, E., Kitamura, A., Shimohigoshi,
M., Watanabe, T., 1999. Photogeneration of highly amphiphilic TiO 2 surfaces. Adv. Mater.
10, 135-138.
184. Nagaveni, K., Sivalingam, G., Hegde, M.S., Madras, G., 2004a. Solar photocatalytic degradation of dyes. High activity of combustion synthesized nano TiO 2 . Appl. Catal. B: Environ.
48, 83-93.
185. Nagaveni, K., Sivalingam, G., Hegde, M.S., Madras, G., 2004b. Photocatalytic degradation
of organic compounds over combustion synthesized nano-TiO 2 . Environ. Sci. Technol. 38,
1600-1604.
186. Siddiquey, I.A., Furusawa, T., Sato, M., Honda, K., Suzuki, N., 2008. Control of the photocatalytic activity of TiO 2 nanoparticles by silica coating with polydiethoxysiloxane. Dyes
Pigm. 76, 754-759.
187. Byrne, J.A., Eggins, B.R., Brown, N.M.D., McKinley, B., Rouse, M., 1998b. Immobilisation
of TiO2 powder for the treatment of polluted water. Appl. Catal. B: Environ. 17, 25-36.
188. Yu, J.C., Yu, J., Zhao, J., 2002. Enhanced photocatalytic activity of mesoporous and ordinary
TiO2 thin films by sulphuric acid treatment. Appl. Catal. B: Environ. 36, 31-43.
References
169. Gogate, P.R., Pandit, A.B., 2004. A review of imperative technologies for wastewater treatment II: hybrid methods. Adv. Environ. Res. 8, 553-597.
170. Pignatello, J.J., Oliveros, E., MacKay, A., 2006. Advanced oxidation processes for organic
contaminant destruction based on the Fenton reaction and related chemistry. Crit. Rev.
Environ. Sci. Technol. 36, 1-84.
171. De Laat, J., Le, G.T., Legube, B., 2004. A comparative study of the effects of chloride, sulphate and nitrate ions on the rates of decomposition of H 2 O 2 and organic compounds by
Fe(II)/H 2 O 2 and Fe(III)/H 2 O 2 . Chemosphere 55, 715-723.
172. Oliveros, E., Legrini, O., Hohl, M., Müller, T., Braun, A.M., 1997. Industrial wastewater
treatment: large scale development of a light-enhanced Fenton reaction. Chem. Eng. Proc.
36, 397-405.
173. Torrades, F., Pérez, M., Mansilla, H.D., Peral, J., 2003. Experimental design of Fenton and
photo-Fenton reactions for the treatment of cellulose bleaching effluents. Chemosphere 53,
1211-1220.
174. Dominguez, C., García, J., Pedraz, M.A., Torres, A., Galán, M.A., 1998. Photocatalytic oxidation of organic pollutants in water. Catal. Today 40, 85-101.
175. Marugán, J., Lopez-Muñoz, M.J., Gernjak, W., Malato, S., 2006. Fe/TiO 2 /pH interactions in
solar degradation of imidacloprid with TiO 2 /SiO 2 photocatalysts at pilot-plant scale. Ind. Eng.
Chem. Res. 45, 8900-8908.
176. Marugán, J., van Grieken, R., Sordo, C., Cruz, C., 2008. Kinetics of the photocatalytic disinfection of Escherichia coli suspensions. Appl. Catal. B: Environ. 82, 27-36.
177. Rincón, A.G., Pulgarin, C., 2006. Comparative evaluation of Fe
3+ and TiO 2 photoassisted
processes in solar photocatalytic disinfection of water. Appl. Catal. B: Environ. 63, 222-231.
178. Beltran-Heredia, J., Torregrosa, J., Dominguez, J.R., Peres, J.A., 2001. Comparison of the
degradation of p-hydroxybenzoic acid in aqueous solution by several oxidation processes.
Chemosphere 42, 351-359.
179. Torres, R.A., Nieto, J.I., Combet, E., Pétrier, C., Pulgarin, C., 2008. Influence of TiO 2 concentration on the synergistic effect between photocatalysis and high-frequency ultrasound for
organic pollutant mineralization in water. Appl. Catal. B: Environ. 80, 168-175.
180. Fujishima, A., Honda, K., 1972. Electrochemical photolysis of water at a semiconductor electrode. Nature 238, 37-38.
181. Hosono, E., Fujihara, S., Kakiuchi, K., Imai, H., 2004. Growth of submicrometer-scale rectangular parallelepiped rutile TiO2 films in aqueous TiCl 3 solutions under hydrothermal conditions. J. Am. Chem. Soc. 126, 7790-7791.
182. Kondo, Y., Yoshikawa, H., Awaga, K., Murayama, M., Mori, T., Sunada, K., Bandow, S.,
Iijima, S., 2008. Preparation, photocatalytic activities, and dye-sensitized solar-cell performance of submicron-scale TiO 2 hollow spheres. Langmuir 24, 547-550.
183. Wang, R., Hashimoto, K., Fujishima, A., Chikuni, M., Kojima, E., Kitamura, A., Shimohigoshi,
M., Watanabe, T., 1999. Photogeneration of highly amphiphilic TiO 2 surfaces. Adv. Mater.
10, 135-138.
184. Nagaveni, K., Sivalingam, G., Hegde, M.S., Madras, G., 2004a. Solar photocatalytic degradation of dyes. High activity of combustion synthesized nano TiO 2 . Appl. Catal. B: Environ.
48, 83-93.
185. Nagaveni, K., Sivalingam, G., Hegde, M.S., Madras, G., 2004b. Photocatalytic degradation
of organic compounds over combustion synthesized nano-TiO 2 . Environ. Sci. Technol. 38,
1600-1604.
186. Siddiquey, I.A., Furusawa, T., Sato, M., Honda, K., Suzuki, N., 2008. Control of the photocatalytic activity of TiO 2 nanoparticles by silica coating with polydiethoxysiloxane. Dyes
Pigm. 76, 754-759.
187. Byrne, J.A., Eggins, B.R., Brown, N.M.D., McKinley, B., Rouse, M., 1998b. Immobilisation
of TiO2 powder for the treatment of polluted water. Appl. Catal. B: Environ. 17, 25-36.
188. Yu, J.C., Yu, J., Zhao, J., 2002. Enhanced photocatalytic activity of mesoporous and ordinary
TiO2 thin films by sulphuric acid treatment. Appl. Catal. B: Environ. 36, 31-43.
References
