319
246. Jung, J.T., Kim, J.O., Choi, W.Y., 2007. Performance of photocatalytic microfiltration with
hollow fiber membrane. Mater. Sci. Forum 544, 95-98.
247. Mozia, S., Morawski, A.W., Toyoda, M., Tsumura, T., 2009. Effect of process parameters on
photodegradation of Acid Yellow 36 in a hybrid photocatalysis–membrane distillation system. Chem. Eng. J. 150, 152-159.
248. Azrague, K., Aimar, P., Benoit-Marqué, F., Maurette, M.T., 2006. A new combination of
a membrane and photocatalytic reactor for the depollution of turbid water. Appl. Catal. B:
Environ. 72, 197-205.
249. Camera-Roda, G., Santarelli, F., 2007. Intensification of water detoxification by integrating
photocatalysis and pervaporation. J. Sol. Energy Eng. 129, 68-73.
250. Augugliaro, V., Litter, M., Palmisano, L., Soria, J., 2006. The combination of heterogeneous
photocatalysis with chemical and physical operations: a tool for improving the photoprocess
performance. J. Photochem. Photobiol. C: Photochem. Rev. 7, 127-144.
251. Lee, H.S., Im, S.J., Kim, J.H., Kim, H.J., Kim, J.P., Min, B.R., 2008. Polyamide thin-film
nanofiltration membranes containing TiO 2 nanoparticles. Desalination 219, 48-56.
252. Meares, P., 1986. Synthetic Membranes: Science, Engineering and Applications. Springer
Publisher, first ed. Peidel, Dordrecht, Netherlands.
253. Gryta, M., Tomaszewska, M., Grzechulska, J., Morawski, A.W., 2001. Membrane distillation
of NaCl solution containing natural organic matter. J. Memb. Sci. 181, 279-287.
254. Tomaszewska, M., Gryta, M., Morawski, A.W., 1998. The influence of salt in solution on
hydrochloric acid recovery by membrane distillation. Sep. Purif. Technol. 14, 183-188.
255. Bouguecha, S., Hamrouni, B., Dhahbi, M., 2005. Small scale desalination pilots powered by
renewable energy sources: case studies. Desalination 183, 151-165.
256. Lawson, K.W., Lloyd, D.R., 1997. Membrane distillation. J. Memb. Sci. 124, 1-25.
257. Bamba, D., Atheba, P., Robert, D., Trokourey, A., Dongui, B., 2008. Photocatalytic degradation of the diuron pesticide. Environ. Chem. Lett. 6, 163-167.
258. Chong, M.N., Jin, B., Zhu, H.Y., Chow, C.W.K., Saint, C., 2009c. Application of H-titanate
nanofibers for degradation of Congo red in an annular slurry photoreactor. Chem. Eng. J. 150,
49-54.
259. Malato, S., Blanco, J., Campos, A., Cáceres, J., Guillard, C., Herrmann, J.M., FernándezAlba, A.R., 2003. Effect of operating parameters on the testing of new industrial titania catalysts at solar pilot plant scale. Appl. Catal. B: Environ. 42, 349-357.
260. Xu, Y., Langford, C.H., 2000. Variation of Langmuir adsorption constant determined
for TiO 2 -photocatalyzed degradation if acetophenone under different light intensity.
J. Photochem. Photobiol. A: Chem. 133, 67-71.
261. Gogniat, G., Thyssen, M., Denis, M., Pulgarin, C., Dukan, S., 2006. The bactericidal effect
of TiO 2 photocatalysis involves adsorption onto catalyst and the loss of membrane integrity.
FEMS Microbiol. Lett. 258, 18-24.
262. Toor, A.P., Verma, A., Jotshi, C.K., Bajpai, P.K., Singh, V., 2006. Photocatalytic degradation
of Direct Yellow 12 dye using UV/TiO 2 in a shallow pond slurry reactor. Dyes Pigm. 68,
53-60.
263. Rincón, A.G., Pulgarin, C., 2004. Effect of pH, inorganic ions, organic matter and H 2 O 2 on E.
coli K12 photocatalytic inactivation by TiO 2 -implications in solar water disinfection. Appl.
Catal. B: Environ. 51, 283-302.
264. Körmann, C., Bahnemann, D.W., Hoffman, M.R., 1991. Photolysis of chloroform and other
organic molecules in aqueous titanium dioxide suspensions. Environ. Sci. Technol. 25,
494-500.
265. Stylidi, M., Kondarides, D.I., Verykios, X.E., 2003. Pathways of solar light-induced photocatalytic degradation of azo dyes in aqueous TiO 2 suspensions. Appl. Catal. B: Environ. 40,
271-286.
266. Herrera Melián, J.A., Doña Rodíguez, J.M., Viera Suárez, A., Valés do Campo, C., Arana, J.,
Pérez Peña, J., 2000. The photocatalytic disinfection of urban waste waters. Chemosphere 41,
323-327.
References
246. Jung, J.T., Kim, J.O., Choi, W.Y., 2007. Performance of photocatalytic microfiltration with
hollow fiber membrane. Mater. Sci. Forum 544, 95-98.
247. Mozia, S., Morawski, A.W., Toyoda, M., Tsumura, T., 2009. Effect of process parameters on
photodegradation of Acid Yellow 36 in a hybrid photocatalysis–membrane distillation system. Chem. Eng. J. 150, 152-159.
248. Azrague, K., Aimar, P., Benoit-Marqué, F., Maurette, M.T., 2006. A new combination of
a membrane and photocatalytic reactor for the depollution of turbid water. Appl. Catal. B:
Environ. 72, 197-205.
249. Camera-Roda, G., Santarelli, F., 2007. Intensification of water detoxification by integrating
photocatalysis and pervaporation. J. Sol. Energy Eng. 129, 68-73.
250. Augugliaro, V., Litter, M., Palmisano, L., Soria, J., 2006. The combination of heterogeneous
photocatalysis with chemical and physical operations: a tool for improving the photoprocess
performance. J. Photochem. Photobiol. C: Photochem. Rev. 7, 127-144.
251. Lee, H.S., Im, S.J., Kim, J.H., Kim, H.J., Kim, J.P., Min, B.R., 2008. Polyamide thin-film
nanofiltration membranes containing TiO 2 nanoparticles. Desalination 219, 48-56.
252. Meares, P., 1986. Synthetic Membranes: Science, Engineering and Applications. Springer
Publisher, first ed. Peidel, Dordrecht, Netherlands.
253. Gryta, M., Tomaszewska, M., Grzechulska, J., Morawski, A.W., 2001. Membrane distillation
of NaCl solution containing natural organic matter. J. Memb. Sci. 181, 279-287.
254. Tomaszewska, M., Gryta, M., Morawski, A.W., 1998. The influence of salt in solution on
hydrochloric acid recovery by membrane distillation. Sep. Purif. Technol. 14, 183-188.
255. Bouguecha, S., Hamrouni, B., Dhahbi, M., 2005. Small scale desalination pilots powered by
renewable energy sources: case studies. Desalination 183, 151-165.
256. Lawson, K.W., Lloyd, D.R., 1997. Membrane distillation. J. Memb. Sci. 124, 1-25.
257. Bamba, D., Atheba, P., Robert, D., Trokourey, A., Dongui, B., 2008. Photocatalytic degradation of the diuron pesticide. Environ. Chem. Lett. 6, 163-167.
258. Chong, M.N., Jin, B., Zhu, H.Y., Chow, C.W.K., Saint, C., 2009c. Application of H-titanate
nanofibers for degradation of Congo red in an annular slurry photoreactor. Chem. Eng. J. 150,
49-54.
259. Malato, S., Blanco, J., Campos, A., Cáceres, J., Guillard, C., Herrmann, J.M., FernándezAlba, A.R., 2003. Effect of operating parameters on the testing of new industrial titania catalysts at solar pilot plant scale. Appl. Catal. B: Environ. 42, 349-357.
260. Xu, Y., Langford, C.H., 2000. Variation of Langmuir adsorption constant determined
for TiO 2 -photocatalyzed degradation if acetophenone under different light intensity.
J. Photochem. Photobiol. A: Chem. 133, 67-71.
261. Gogniat, G., Thyssen, M., Denis, M., Pulgarin, C., Dukan, S., 2006. The bactericidal effect
of TiO 2 photocatalysis involves adsorption onto catalyst and the loss of membrane integrity.
FEMS Microbiol. Lett. 258, 18-24.
262. Toor, A.P., Verma, A., Jotshi, C.K., Bajpai, P.K., Singh, V., 2006. Photocatalytic degradation
of Direct Yellow 12 dye using UV/TiO 2 in a shallow pond slurry reactor. Dyes Pigm. 68,
53-60.
263. Rincón, A.G., Pulgarin, C., 2004. Effect of pH, inorganic ions, organic matter and H 2 O 2 on E.
coli K12 photocatalytic inactivation by TiO 2 -implications in solar water disinfection. Appl.
Catal. B: Environ. 51, 283-302.
264. Körmann, C., Bahnemann, D.W., Hoffman, M.R., 1991. Photolysis of chloroform and other
organic molecules in aqueous titanium dioxide suspensions. Environ. Sci. Technol. 25,
494-500.
265. Stylidi, M., Kondarides, D.I., Verykios, X.E., 2003. Pathways of solar light-induced photocatalytic degradation of azo dyes in aqueous TiO 2 suspensions. Appl. Catal. B: Environ. 40,
271-286.
266. Herrera Melián, J.A., Doña Rodíguez, J.M., Viera Suárez, A., Valés do Campo, C., Arana, J.,
Pérez Peña, J., 2000. The photocatalytic disinfection of urban waste waters. Chemosphere 41,
323-327.
References
