1[1]Taborda A V, Brusa M A, Grela M A. Photocatalytic degradation of phthalic acid on TiO2 nanoparticles[J]. Applied Catalysis A: General, 2001, 208: 419-426
2[2]Makarova O V, Rajh T, Thurnaure M C. Surface modification of TiO2 nanoparticles for photochemical reduction of nitrobenzene[J]. Environmental Science Technology, 2000, 34: 4797-4803
3[3]Wu J, Uchida S, Fujishiro Y et al. Synthesis and photocatalytic properties of HNbWO6/TiO2 and HNbWO6/Fe2O3 nanocomposites[J]. Journal of Photochemistry Photobiology A: Chemistry, 1999, 129-133
4[4]Yanagisawa M, Uchida S, Sato T. Synthesis and photochemical properties of Cu2+ doped layered hydrogen titanate[J]. International Journal of Material, 2000, 2: 339-346
5[5]Yanagisawa M, Sato T. Synthesis and photocatalytic properties of titania pillared hydrogen tetratitanate using titanyl acylate precursor[J]. International Journal of Material, 2001, 3: 157-160
6[6]Reutergardh L B, Iangphasuk M. Photocatalytic decolourization of reactive azo dye: A comparison between TiO2 and CdS photocatalysis[J]. Chemosphere, 1997, 35: 585-596
7[7]El-Maazawi M, Finken A N, Nair A B et al. Adsorption and photocatalytic oxidation of acetone on TiO2: An in situ transmission FT-IR study[J]. Journal of Catalysis, 2000, 191: 138-146
8[8]Matthews R W. An adsorption water purifier with in situ photocatalytic regeneration[J]. Journal of Catalysis, 1988, 113: 549-555
9[9]Mishra T, Parida K. Transition metal pillared clay 4. A comparative study of textural, acidic and catalytic properties of chromia pillared montorillonite and acid activated montmorillonite[J]. Applied Catalysis A: General, 1998, 166: 123-133
10[10]Salerno P, Asenjo M B, Mendioroz S. Influence of preparation method on thermal stability and acidity of Al-PILCs[J]. Thermochimica Acta, 2001, 379: 101-109