318
226. Li, H., Li, J., Huo, Y., 2006. Highly active TiO 2 N photocatalysts prepared by treating TiO 2
precursors in NH 3 /ethanol fluid under supercritical conditions. J. Phys. Chem. B 110,
1559-1565.
227. Shaban, Y.A., Khan, S.U.M., 2008. Visible light active carbon modified n-TiO 2 for efficient
hydrogen production by photoelectrochemical splitting of water. Int. J. Hydrogen Energy 33,
1118-1126.
228. Asahi, R., Morikawa, T., Ohwaki, T., Aoki, K., Taga, Y., 2001. Visible-light photocatalysis in
nitrogen-doped titanium dioxides. Science 293, 269-271.
229. Ihara, T., Miyoshi, M., Iriyama, Y., Matsumoto, O., Sugihara, S., 2003. Visible-light-active
titanium dioxide photocatalyst realized by an oxygen-deficient structure and by nitrogen doping. Appl. Catal. B: Environ. 42, 403-409.
230. Irie, H., Watanabe, Y., Hashimoto, K., 2003. Nitrogen concentration dependence on photocatalytic activity of TiO 2-x N x powders. J. Phys. Chem. B 107, 5483-5486.
231. Chen, D., Ray, A.K., 1998. Photodegradation kinetics of 4-nitrophenol in TiO 2 suspension.
Water Res. 32, 3223-3234.
232. Tsarenko, S.A., Kochkodan, V.M., Samsoni-Todorov, A.O., Goncharuk, V.V., 2006. Removal
of humic substances from aqueous solutions with a photocatalytic membrane reactor. Colloid
J. 68, 341-344.
233. Pozzo, R.L., Giombi, J.L., Baltanas, M.A., Cassano, A.E., 2000. The performance in a fluidized bed reactor of photocatalysts immobilized onto inert supports. Catal. Today 62, 175-187.
234. Chan, A.H.C., Chan, C.K., Barford, J.P., Porter, J.F., 2003. Solar photocatalytic thin film cascade reactor for treatment of benzoic acid containing wastewater. Water Res. 37, 1125-1135.
235. Ochuma, I.J., Fishwick, R.P., Wood, J., Winterbottom, J.M., 2007. Optimisation of degradation conditions of 1,8-diazabicyclo [5. 4.0] undec-7-ene in water and reaction kinetics analysis using a cocurrent downflow contactor photocatalytic reactor. Appl. Catal. B: Environ. 73,
259-268.
236. Pareek, V., Chong, S., Tadé, M., Adesina, A.A., 2008. Light intensity distribution in heterogeneous photocatalytic reactors. Asia-Pacific J. Chem. Eng. 3, 171-201.
237. Fu, J., Ji, M., Wang, Z., Jin, L., An, D., 2006. A new submerged membrane photocatalysis
reactor (SMPR) for fulvic acid removal using a nano-structured photocatalyst. J. Hazard.
Mater. 131, 238-242.
238. Molinari, R., Grande, C., Drioli, E., Palmisano, L., Schiavello, M., 2001. Photocatalytic
membrane reactors for degradation of organic pollutants in water. Catal. Today 67, 273-279.
239. Chin, S.S., Lim, T.M., Chiang, K., Fane, A.G., 2007. Hybrid low pressure submerged membrane photoreactor for the removal of bisphenol A. Desalination 2002, 253-261.
240. Huang, X., Meng, Y., Liang, P., Qian, Y., 2007. Operational conditions of a membrane filtration reactor coupled with photocatalytic oxidation. Sep. Purif. Technol. 55, 165-172.
241. Meng, Y., Huang, X., Yang, Q., Qian, Y., Kubota, N., Fukunaga, S., 2005. Treatment of polluted river water with a photocatalytic slurry reactor using low-pressure mercury lamps coupled with a membrane. Desalination 181, 121-133.
242. Sopajaree, K., Qasim, S.A., Basak, S., Rajeshwar, K., 1999a. An integrated flow reactormembrane filtration system for heterogeneous photocatalysis. Part I. Experiments and modelling of a batch-recirculated photoreactor. J. Appl. Electrochem. 29, 533-539.
243. Sopajaree, K., Qasim, S.A., Basak, S., Rajeshwar, K., 1999b. An integrated flow-reactor
membrane filtration system for heterogeneous photocatalysis. Part II. Experiments on the
ultrafiltration unit and combined operation. J. Appl. Electrochem. 29, 1111-1118.
244. Augugliaro, V., García-López, E., Loddo, V., Malato-Rodíguez, S., Maldonado, I., Marcí, G.,
Molinari, R., Palmisano, L., 2005. Degradation of lincomycin in aqueous medium: coupling
of solar photocatalysis and membrane separation. Sol. Energy 79, 402-408.
245. Molinari, R., Pirilla, F., Loddo, V., Palmisano, L., 2006. Heterogeneous photocatalytic degradation of pharmaceuticals in water by using polycrystalline TiO 2 and a nanofiltration membrane reactor. Catal. Today 118, 205-213.
13 Wastewater
226. Li, H., Li, J., Huo, Y., 2006. Highly active TiO 2 N photocatalysts prepared by treating TiO 2
precursors in NH 3 /ethanol fluid under supercritical conditions. J. Phys. Chem. B 110,
1559-1565.
227. Shaban, Y.A., Khan, S.U.M., 2008. Visible light active carbon modified n-TiO 2 for efficient
hydrogen production by photoelectrochemical splitting of water. Int. J. Hydrogen Energy 33,
1118-1126.
228. Asahi, R., Morikawa, T., Ohwaki, T., Aoki, K., Taga, Y., 2001. Visible-light photocatalysis in
nitrogen-doped titanium dioxides. Science 293, 269-271.
229. Ihara, T., Miyoshi, M., Iriyama, Y., Matsumoto, O., Sugihara, S., 2003. Visible-light-active
titanium dioxide photocatalyst realized by an oxygen-deficient structure and by nitrogen doping. Appl. Catal. B: Environ. 42, 403-409.
230. Irie, H., Watanabe, Y., Hashimoto, K., 2003. Nitrogen concentration dependence on photocatalytic activity of TiO 2-x N x powders. J. Phys. Chem. B 107, 5483-5486.
231. Chen, D., Ray, A.K., 1998. Photodegradation kinetics of 4-nitrophenol in TiO 2 suspension.
Water Res. 32, 3223-3234.
232. Tsarenko, S.A., Kochkodan, V.M., Samsoni-Todorov, A.O., Goncharuk, V.V., 2006. Removal
of humic substances from aqueous solutions with a photocatalytic membrane reactor. Colloid
J. 68, 341-344.
233. Pozzo, R.L., Giombi, J.L., Baltanas, M.A., Cassano, A.E., 2000. The performance in a fluidized bed reactor of photocatalysts immobilized onto inert supports. Catal. Today 62, 175-187.
234. Chan, A.H.C., Chan, C.K., Barford, J.P., Porter, J.F., 2003. Solar photocatalytic thin film cascade reactor for treatment of benzoic acid containing wastewater. Water Res. 37, 1125-1135.
235. Ochuma, I.J., Fishwick, R.P., Wood, J., Winterbottom, J.M., 2007. Optimisation of degradation conditions of 1,8-diazabicyclo [5. 4.0] undec-7-ene in water and reaction kinetics analysis using a cocurrent downflow contactor photocatalytic reactor. Appl. Catal. B: Environ. 73,
259-268.
236. Pareek, V., Chong, S., Tadé, M., Adesina, A.A., 2008. Light intensity distribution in heterogeneous photocatalytic reactors. Asia-Pacific J. Chem. Eng. 3, 171-201.
237. Fu, J., Ji, M., Wang, Z., Jin, L., An, D., 2006. A new submerged membrane photocatalysis
reactor (SMPR) for fulvic acid removal using a nano-structured photocatalyst. J. Hazard.
Mater. 131, 238-242.
238. Molinari, R., Grande, C., Drioli, E., Palmisano, L., Schiavello, M., 2001. Photocatalytic
membrane reactors for degradation of organic pollutants in water. Catal. Today 67, 273-279.
239. Chin, S.S., Lim, T.M., Chiang, K., Fane, A.G., 2007. Hybrid low pressure submerged membrane photoreactor for the removal of bisphenol A. Desalination 2002, 253-261.
240. Huang, X., Meng, Y., Liang, P., Qian, Y., 2007. Operational conditions of a membrane filtration reactor coupled with photocatalytic oxidation. Sep. Purif. Technol. 55, 165-172.
241. Meng, Y., Huang, X., Yang, Q., Qian, Y., Kubota, N., Fukunaga, S., 2005. Treatment of polluted river water with a photocatalytic slurry reactor using low-pressure mercury lamps coupled with a membrane. Desalination 181, 121-133.
242. Sopajaree, K., Qasim, S.A., Basak, S., Rajeshwar, K., 1999a. An integrated flow reactormembrane filtration system for heterogeneous photocatalysis. Part I. Experiments and modelling of a batch-recirculated photoreactor. J. Appl. Electrochem. 29, 533-539.
243. Sopajaree, K., Qasim, S.A., Basak, S., Rajeshwar, K., 1999b. An integrated flow-reactor
membrane filtration system for heterogeneous photocatalysis. Part II. Experiments on the
ultrafiltration unit and combined operation. J. Appl. Electrochem. 29, 1111-1118.
244. Augugliaro, V., García-López, E., Loddo, V., Malato-Rodíguez, S., Maldonado, I., Marcí, G.,
Molinari, R., Palmisano, L., 2005. Degradation of lincomycin in aqueous medium: coupling
of solar photocatalysis and membrane separation. Sol. Energy 79, 402-408.
245. Molinari, R., Pirilla, F., Loddo, V., Palmisano, L., 2006. Heterogeneous photocatalytic degradation of pharmaceuticals in water by using polycrystalline TiO 2 and a nanofiltration membrane reactor. Catal. Today 118, 205-213.
13 Wastewater
