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Effect of Dispersity and Porous Structure of TiO2 Nanopowders on Photocatalytic Destruction of Azodyes in Aqueous Solutions 被引量:1

Effect of Dispersity and Porous Structure of TiO2 Nanopowders on Photocatalytic Destruction of Azodyes in Aqueous Solutions
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摘要 Photocatalytic activity of TiO2 nanopowders of anatase modification with various particle sizes and specific surface areas has been studied in the process of photocatalytic decolorization of aqueous solutions of methylene blue and direct blue 2C azodyes. By means of scanning electron microscopy and low-temperature N2 adsorption method, it was found that TiO2 nanopowders have the particles size of 5-120 nm with the specific surface area of 15-120 m2·g^-1. The used TiO2 samples are characterized by mesoporous structures with average pore size of 4.3-14.9 nm. The photocatalytic activity of TiO2 was evaluated via decolorization of azodyes solutions. It was shown that the efficiency of decolorization symbatically changes with the dye adsorption value on TiO2 surface and the degree of decolorization rises when the surface area of TiO2 nanopowders increases. It was found that TiO2 photocatalytic activity essentially depends on adsorption interactions between the dye molecules and catalytic active centers on TiO2 surface, and these interactions, in turn, are greatly affected by pH of the solution.
出处 《Journal of Chemistry and Chemical Engineering》 2013年第10期949-957,共9页 化学与化工(英文版)
关键词 TIO2 surface area photocatalytic decolorization AZODYE adsorption TiO2纳米粉体 偶氮染料 二氧化钛 水溶液 光催化降解 多孔结构 分散性 低温氮吸附法
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  • 1Parsons, S. Advanced Oxidation Processes for Water and Wastewater; IWA Publishing: London, 2004.
  • 2Hal, F. I.; Yamamoto, K.; Fukushi, K. Hybrid Treatment Systems for Dye Wastewater. Crit. Rev. Environ. Sei. Technol. 2007, 37, 315-377.
  • 3Slokar, Y. M.; Le, M. A. M. Methods of Decoloration of Textile Wastewaters. Dyes Pigm. 1998, 37, 335-356.
  • 4Robinson, T.; McMullan, G.; Marchant, R.; Nigam, P. Remediation of Dyes in Textile Effluent: A Critical Review on Current Treatment Technologies with a Proposed Alternative. Bioresour Technol. 2001, 77, 247-255.
  • 5Nasuha, N.; Hameed, B. H.; Din, A. T. M. Rejected Tea as a Potential Low-Cost Adsorbent for the Removal of Methylene Blue. J. Hazard Mater 2010, 175, 126-132.
  • 6Martin, M. J.; Artola, A.; Balaguer, M. D.; Rigola, M. Activated Carbons Developed from Surplus Sewage Sludge for the Removal of Dyes from Dilute Aqueous Solutions. Chem. Engineer J. 2003, 94, 231-239.
  • 7Ahmad, A. L.; Puasa, S. W. Reactive Dyes Decolorization from an Aqueous Solution by Combined Coagulation/Micellar-Enhanced Ultrafiltration Process. Chem. Engineer J. 2007, 132, 257-265.
  • 8Riera, T. M.; Guti6rrez, B. C.; Crespi, M. Combination of Coagulation-Flocculation and Nanofiltration Techniques for Dye Removal and Water Reuse in Textile Effluents. Desalination 2010, 252, 53-59.
  • 9Shakir, K.; Elkafrawy, A. F.; Ghoneimy, H. F.; Elrab, B. S. G.; Refaat, M. Removal of Rhodamine B (a Basic Dye) and Thoron (an Acidic Dye) from Dilute Aqueous Solutions and Wastewater Simulants by Ion Flotation. Water Research 2010, 44, 1449-1461.
  • 10Zodi, S.; Potier, O.; Lapicque, F.; Leclerc, J. P. Treatment of the Industrial Wastewaters by Electrocoagulation: Optimization of Coupled Electrochemical and Sedimentation Processes. Desalination 2010, 261, 186-190.

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