Maximum SiO2 layer thickness by utilizing polyethylene glycol as the surfactant in synthesis of core/shell structured TiO2–SiO2 nano-composites

被引:3
作者
Maryam Kari
Mehdi Montazeri-Pour
Masoud Rajabi
Vahide Tizjang
Shahab Moghadas
机构
[1] Imam Khomeini International University (IKIU),Department of Metallurgy and Materials Engineering, Faculty of Technology and Engineering
[2] University of Tehran,School of Metallurgy and Materials Engineering, College of Engineering
[3] Materials and Energy Research Center (MERC),undefined
来源
Journal of Materials Science: Materials in Electronics | 2014年 / 25卷
关键词
TiO2; Methylene Blue; Silica Coating; Silica Shell Thickness; Silica Molecule;
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中图分类号
学科分类号
摘要
TiO2–SiO2 nano-composites with the core/shell structure have been prepared by means of a technique based on an extension of well-known Stöber process. In this way, the silica coating of TiO2 nano-particles in the presence of various commercially available surfactants of cationic, anionic and nonionic has been conducted with the aim to increase barrier properties against UV (UV blocking) radiation, in order to optimize photo-killing ability of the TiO2 nano-particles and decline of the high photo-catalytic property of titania. The influences of varying coating parameters such as time and temperature on the silica content of nano-composites have been studied and optimum conditions for attaining a thick layer of SiO2 have been determined. Electro-phoretic mobility measurements indicated that the silica coating shifted the iso-electric point of titania toward that of a typical pure colloidal silica. Surface elemental composition of core/shell structured TiO2–SiO2 nano-composites was verified by using energy dispersive X-ray analysis. It was found that maximum silica shell thickness can be obtained in the presence of polyethylene glycol as a nonionic surfactant at 80 °C for 360 min. The photo-catalytic activities were evaluated by the degradation of an aqueous solution of methylene blue under UV light irradiation. In addition, the resultant optimum nano-composites have been characterized by FESEM, TEM, BET, FTIR and UV–Vis spectroscopy.
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页码:5560 / 5569
页数:9
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  • [1] Singh P(2012)Nanotechnology in cosmetics: a boon or bane? Toxicol. Environ. Chem. 94 1467-1479
  • [2] Nanda A(2004)Cosmetic application of micro-fine titanium dioxide J. Appl. Cosmetol. 22 143-153
  • [3] Glówczyk-Zubek J(1998)A review of sunscreen safety and efficacy Photochem. Photobiol. 68 243-256
  • [4] Gasparro FP(1999)Photo-degradation and photo-oxidation of thermo-set and UV-cured acrylate polymers Polym. Degrad. Stab. 64 293-304
  • [5] Mitchnick M(2004)Studying the mechanisms of titanium dioxide as ultraviolet-blocking additive for films and fabrics by an improved scheme J. Appl. Polym. Sci. 92 3201-3210
  • [6] Nash JF(2007)Titanium dioxide nano-materials: synthesis, properties, modifications, and applications Chem. Rev. 107 2891-2959
  • [7] Decker C(2006)Effect of particle size on the photo-catalytic activity of nano-particulate zinc oxide J. Nano-part. Res. 8 43-51
  • [8] Zahouily K(2011)UV-shielding property, photo-catalytic activity and photo-cyto-toxicity of ceria colloid solutions J. Photochem. Photobiol. B 102 32-38
  • [9] Yang H(1997)An overview of semiconductor photo-catalysis J. Photochem. Photobiol. A 108 1-35
  • [10] Zhu S(1995)Environmental applications of semiconductor photo-catalysis Chem. Rev. 95 69-96