參考文獻 |
Akhavan, O., “Lasting antibacterial activities of Ag–TiO2/Ag/a-TiO2 nanocomposite thin film photocatalysts under solar light irradiation”, J. of Colloid and Interface Science 336 (2009) 117-124.
Andrew, M., and S. L. Hunte, “An overview of semiconductor photocatalysis”, J. Photochem. Photobiol. A-Chem. (1997) 1-35.
Asilturk, M., F. Sayilkan, E. Arpac, “Effect of Fe3+ ion doping to TiO2 on the photocatalytic degradation of Malachite Green dye under UV and vis-irradiation”, J. Photochem. Photobiol. A 203 (2009) 64-71.
Chong, M. N., B. Jin, C. W. K. Chow, and C. Saint, “Recent developments in photocatalytic water treatment technology: A review”, water research 44 (2010) 2997-3027.
Daghrir, R., P. Drogui, and D. Robert, “Modified TiO2 For Environmental Photocatalytic Applications: A Review”, Ind. Eng. Chem. Res. 52 (2013) 3581-3599.
Diebold, U., “The surface science of titanium dioxide”, Surf. Sci. Rep. 48 (2003) 53-229.
Dobosz, A. and A. Sobczyński, “The influence of silver additives on titania photoactivity in the photooxidation of phenol”, Water Research 37 (2003) 1489-1496.
Fujishima, A., T. N. Rao, and D. A. Tryk, “Titanium dioxide photocatalysis”, Journal of Photochemistry and Photobiology C: Photochemistry Reviews 1 (2000) 1-21.
Fujishima, A., X. Zhang, and D. A. Tryk, “TiO2 photocatalysis and related surface phenomena”, Surface Science Reports 63 (2008) 515-582.
Gao, X. and I. E. Wachs, “Titania-silica as catalysts: molecular structural characteristics and physico-chemical properties”, Catalysis Today 51 (1999) 233-254.
Grabowska, E., H. Remita, A. Zaleska, “Photocatalytic activity of TiO2 loaded with metal clusters”, Physicochem. Probl. Miner. Process. 45 (2010) 29-38.
Guana, K., B. Luc, and Y. Yin, “Enhanced effect and mechanism of SiO2 addition in super-hydrophilic property of TiO2 films”, Surface and Coatings Technology 173 (2003) 219-223.
Guan, K., “Relationship between photocatalytic activity, hydrophilicity and self-cleaning effect of TiO2/SiO2 films”, Surface & Coatings Technology 191 (2005) 155-160.
Huda, S., S. K. Smoukov, H. Nakanishi, B. Kowalczyk, K. Bishop, and B. A. Grzybowski, “Antibacterial nanoparticle monolayers prepared on chemically inert surfaces by cooperative electrostatic adsorption (CELA)”, Appl. Mater. Interfaces 4 (2010) 1206-1210.
Jaiswal, R., N. Patel, D.C. Kothari, and A. Miotello, “Improved visible light photocatalytic activity of TiO2 co-doped with Vanadium and Nitrogen”, Applied Catalysis B: Enviromental 126 (2012) 47-54.
Li, F., L. X. Guan, M. L. Dai, J. J. Feng, and M. M. Yao, “Effects of V and Zn codoping on the microstructures and photocatalytic activities of nanocrystalline TiO2 films”, Ceramics International 39 (2013) 7395-7400.
Lin, Y. c. and C. h. Lin, “Catalytic and photocatalytic degradation of ozone via utilization of controllable nano‐Ag modified on TiO2”, Environmental Progress 27 (2008) 496-502.
Linsebigler, A. L., G. Lu, and J. T. Yates, “Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results”, Chemical Reviews 95 (1995) 735-758.
Liu, P. C., J. H. Hsieh, C. Li, Y. K. Chang, and C. C. Yang, “Dissolution of Cu nanoparticles and antibacterial behaviors of TaN–Cu nanocomposite thin films”, Thin Solid Films 517 (2009) 4956-4960.
Liu, S. X., Z. P. Qu, X. W. Han, and C. L. Sun, “A mechanism for enhanced photocatalytic activity of silver-loaded titanium dioxide”, Catalysis Today (2004) 93-95, 877-884.
Liu, Z., J. Ya, L.E, Y. Xin, and W. Zhao, “Effect of V doping on the band-gap reduction of porous TiO2 films prepared by sol-gel route”, Mater. Chem. Phys. 120 (2010) 277-281.
Lo´pez, R. and R. Go´mez, “Band-gap energy estimation from diffuse reflectance measurements on sol–gel and commercial TiO2: a comparative study”, J Sol-Gel Sci Technol 61 (2012) 1-7.
Machida, M., K. Norimoto, T. Watanabe, K. Hashimoto, and A. Fujishima, “The effect of SiO2 addition in super-hydrophilic property of TiO2 photocatalyst”, J. Mater. Sci. 34 (1999) 2569-2574.
Macwan, D. P., P. N. Dave, and S. Chaturvedi, “A review on nano-TiO2 sol–gel type syntheses and its applications”, J. Mater. Sci. 46 (2011) 3669–3686.
Nakata, K., and A. Fujishima, “TiO2 photocatalysis: Design and applications”, J. Photochem. Photobiol. C: Photochem. Rev. 13 (2012) 169-189.
Nittaa, Y., K. Okamotoa, T. Nakatania, H. Hoshib, A. Hommab, E. Tatsumib and Y. Taenaka, “Diamond-like carbon thin film with controlled zeta potential for medical material application.” Diamond and Related Materials 17(2008) 1972-1976.
Pelaez, M., N. T. Nolan, S. C. Pillai, M. K. Seery, P. Falaras, A. G. Kontos, P. S. M. Dunlope, J. W. J. Hamiltone, J. A. Byrne, K. O’Shea, M. H. Entezari, D. D. Dionysiou, “A review on the visible light active titanium dioxide photocatalysts for environmental applications”, Appl. Catal. B: Environ. 125 (2012) 331-349.
Sasirekha, N., B. Rajesh, and Y.W. Chen, “Synthesis of TiO2 sol in a neutral solution using TiCl4 as a precursor and H2O2 as an oxidizing agent”, Thin Solid Films 518 (2009) 43-48.
Tanabe, K., T. Sumiyoshi, K. Shibata, T. Kiyoura, and J. Kitagawa, “A new hypothesis regarding the surface acidity of binary metal oxides”, Bulletin of the Chemical Society of Japan (1974) 1064-1066.
Teh, C.M., A. R. Mohamed, “Roles of titanium dioxide and ion-doped titanium dioxide on photocatalytic degradation of organic pollutants (phenolic compounds and dyes) in aqueous solutions: A review”, J. Alloys Compd. 509 (2011) 1648-1660.
Wang, R., K. Hashimoto, A. Fujishima, M. Chikuni, E. Kojima, A. Kitamura, M. Shimohigoshi, and T. Watanabe, “Photogeneration of highly amphiphilic TiO2 surfaces”, Adv. Mater. (1998) 135-138.
Xu, Y. H., C. Chen, X.L. Yang, X. Li, B.F. Wang, “Preparation, characterization and photocatalytic activity of the neodymium-doped TiO2 nanotubes”, Applied Surface Science 255 (2009) 8624-8628.
Zhang, D. R., H. L. Liu, S. Y. Han, and W. X. Piao, “Synthesis of Sc and V-doped TiO2 nanoparticles and photodegradation of rhodamine-B”, J. Ind. Eng. Chem. 19 (2013) 1838-1844. |