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Titanium dioxide in our everyday life; is it safe?

films. J Appl Phys 2004; 75 : 2042-7. Augustynski J. The role of the surface intermediates in the photoelectro-chemical behaviour of anatase and rutile TiO2. Electrochimica Acta 1993; 38 : 43-6. Hewitt JP. Titanium dioxide: a different kind of sunshield. Drug Cosmet Ind 1992; 151 : 26-32. Fujishima A, Zhang X, Tryk DA. TiO2 photocatalysis and related surface phenomena. Surf Sci Rep 2008; 63 : 515-82. Xia T, Kovochich M, Brant J, Hotze M, Sempf J, Oberley

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Modyfication of photocatalytic properties of titanium dioxide by mechanochemical method

. & Hunte, S.L. (1997). An overview of semiconductor photocatalysis. J. Photochem. Photobiol. A: Chem. 108, 1-35. DOI: 10.1016/S1010-6030(97)00118-4. 5. Chen, X. & Mao, S.S. (2007). Titanium Dioxide nanomaterials: Synthesis, Properties, Modifi cations and Applications. Chem. Rev. 107, 2891-2959. DOI: 10.1021/cr0500535. 6. Carp, O., Huisman, C.L. & Reller, A. (2004) Photoinduced reactivity of titanium dioxide. Progr. Sol. State Chem. 32, 33-177. DOI: 10.1016/j.progsolidstchem. 2004.08.001. 7. Marschall, R. & Wang, L. (2014

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Combination of mesoporous titanium dioxide with MoS2 nanosheets for high photocatalytic activity

LITERATURE CITED 1. Hoffmann, M.R., Martin, S.T., Choi, W. & Bahnemann, D.W. (1995). Environmental applications of semiconductor photocatalysis. Chem. Rev. 95(1), 69–96. DOI: 10.1021/cr00033a004. 2. Serpone, N. & Emeline, A.V. (2012). Semiconductor photocatalysis–past, present, and future outlook. J. Phys. Chem. Lett. 3(5), 673–677. DOI: 10.1021/jz300071j. 3. Gholami, T., Salavati-Niasari, M., Reza Momenian, H., Noori, E. & Ghanbari, D. (2015). Synthesis of Titanium Dioxide Nanoparticles and Investigation of Its Photocatalytic Properties

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Electrical properties of hybrid planar diode based on palladium phthalocyanine and titanium dioxide


This work presents experimental studies of a planar diode made of the layers of indium tin oxide, titanium dioxide, palladium phthalocyanine and gold. The current rectification ratio was 105 at 1.5 V. The analysis of the electrical properties of the system was based on small signal complex capacitance spectra measured in the frequency range of 25 Hz — 1 MHz at different values of bias. No depletion region at the TiO2/PdPc interface was observed. Forward bias specifically affected both parts of the complex capacitance and the observed effect probably resulted from the rearrangement of charge carriers injected into the organic layer.

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Influence of titanium dioxide modification on the antibacterial properties

mechanisms. J. Environ. Sci. 34, 232–247. DOI: 10.1016/j.jes.2015.05.003. 4. Huaa, G. & Reckhow, D.A. (2007). Comparison of dis-infection byproduct formation from chlorine and alternative disinfectants. Water Res. 41(8), 1667–1678. DOI: 10.1016/j.watres.2007.01.032. 5. Gunten, U. (2003). Ozonation of drinking water: Part I. Oxidation kinetics and product formation. Water Res. 37(8), 1443–1467. DOI: 10.1016/S0043-1354(02)00457-8. 6. Lazar, M.J., Varghese, S. & Nair, S.S. (2012). Photocatalytic water treatment by titanium dioxide: recent updates. Catalysts

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The influence of admixtures on the course of hydrolysis of titanyl sulfate

). Titanium Dioxide: From Black Sand to White Pigment. Chem. Eng. Prog. 101(6), 64. Dąbrowski, W., Tymejczyk, A. & Lubkowska, A. (2001). Properties and application of titanium dioxide pigments. Police: Chemical Works "Police" S.A. Cinafichi, G. L. (2004). Chinese TiO 2 Markets. Presented at the UBS Grass Roots Chemical Conference, New Orlean, February 10. Karvinen, S. (1995). Method of preparing titanium dioxide, U.S. Patent No. 5443811. Washington, D.C.: U.S. Patent and Trademark Office

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Deposition of gold nanoparticles from colloid on TiO2 surface

88 , 2007, pp. 173-178. [13] M. Oyama, A. Orimo and K. Nouneh, “Conductometric gas sensors based on metal oxides modified with gold nanoparticles: a review”, Electrochimica Acta 54 , 2009, pp. 5042-5047. [14] V. Rehacek, I. Hotovy and M. Vojs, “Treatment of TiO 2 surface for deposition of gold nanoparticles from colloidal suspension”, J. Micromech. Microeng , 2015, 25:074008. [15] T. Watanabe, A. Nakajima, R. Wang, M. Minabe, S. Koizumi, A. Fujishima and K. Hashimoto, “Photocatalytic activity and photoinduced hydrophilicity of titanium dioxide

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Effects of processing parameters on hydrolysis of TiOSO4

References (1999). Titanium Dioxide Pigments, Manufacture and General Properties of Titanium Dioxide Pigments. London: Tioxide Group. Dąbrowski, W., Tymejczyk, A. & Lubkowska, A. (2001). Properties and application of titanium dioxide pigments. Police: Chemical Works "Police" S. A. Guez, A. & Steiner, C. (2000). Titanium dioxide pigment, method of obtaining same and application thereof. FR Patent No. 2,758,826. Jesionowski, T., Krysztafkiewicz, A. & Dec

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The morphological and dispersive characterization of commercial titanium dioxides

References Dąbrowski W.: Rola bieli tytanowej w tworzywach sztucznych, Tworzywa Sztuczne i Chemia , 2005, 6 6. Otton F. A., Wilkinson G., Gaus P. J.: Chemia nieorganiczna. Podstawy, PWN, Warszawa, 2002. Braun J. H.: Titanium dioxide a review, J. Catings Technol. , 1997, 69 868. Rybacki E., Stożek T.: Substancje pomocnicze w technologii postaci leku, PZWL, Warszawa, 1980. Morgans W. M.: Outlines of Paint Technology, Halsted Press

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Synthesis and Photocatalytic Properties of Nitrogen Modified Titanium Dioxide

nitrogen-doped titanium dioxide nanoparticles prepared by plasma assisted chemical vapor deposition. J Vac Sci Technol B Nanotechnol Microelectron. 2006;24(3):1210-14. 4. Cong Ye, Zhang J, Chen F, Anpo M. Synthesis and characterization of nitrogen-doped TiO 2 nanophotocatalyst with high visible light activity. J Phys Chem C. 2007 ; 111(19):6976-82. 5. Burda C, Lou Y, Chen X, Samia A C S, Stout J, Gole J L. Enhanced nitrogen doping in TiO 2 nanoparticles. Nano Letters. 2003;3(8):1049-51. 6. Factorovich M, Guz L, Candal R. N-TiO 2 : chemical synthesis

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