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铁掺杂对超声法制备的介孔二氧化钛粉末光催化活性的影响。

Effects of Fe-doping on the photocatalytic activity of mesoporous TiO2 powders prepared by an ultrasonic method.

作者信息

Zhou Minghua, Yu Jiaguo, Cheng Bei

机构信息

State Key Laboratory of Advanced Technology for Material Synthesis and Processing, Wuhan University of Technology, Luoshi Road 122, Wuhan 430070, PR China.

出版信息

J Hazard Mater. 2006 Oct 11;137(3):1838-47. doi: 10.1016/j.jhazmat.2006.05.028. Epub 2006 May 16.

Abstract

Highly photoactive nanocrystalline mesoporous Fe-doped TiO(2) powders were prepared by the ultrasonic-induced hydrolysis reaction of tetrabutyl titanate (Ti(OC(4)H(9))(4)) in a ferric nitrate aqueous solution (pH 5) without using any templates or surfactants. The as-prepared samples were characterized by thermogravimetry and differential thermal analysis (TG-DTA), X-ray diffraction (XRD), N(2) adsorption-desorption measurements, UV-visible adsorbance spectra (UV-vis) and X-ray photoelectron spectroscopy (XPS). The photocatalytic activities were evaluated by the photocatalytic oxidation of acetone in air. The results showed that all the Fe-doped TiO(2) samples prepared by ultrasonic methods were mesoporous nanocrystalline. A small amount of Fe(3+) ions in TiO(2) powders could obviously enhance their photocatalytic activity. The photocatalytic activity of Fe-doped TiO(2) powders prepared by this method and calcined at 400 degrees C exceeded that of Degussa P25 (P25) by a factor of more than two times at an optimal atomic ratio of Fe to Ti of 0.25. The high activities of the Fe-doped TiO(2) powders could be attributed to the results of the synergetic effects of Fe-doping, large BET specific surface area and small crystallite size.

摘要

通过在硝酸铁水溶液(pH值为5)中超声诱导钛酸四丁酯(Ti(OC₄H₉)₄)水解反应,制备了具有高光活性的纳米晶介孔铁掺杂TiO₂粉末,且未使用任何模板或表面活性剂。采用热重-差示热分析(TG-DTA)、X射线衍射(XRD)、N₂吸附-脱附测量、紫外-可见吸收光谱(UV-vis)和X射线光电子能谱(XPS)对所制备的样品进行了表征。通过空气中丙酮的光催化氧化来评估光催化活性。结果表明,所有通过超声方法制备的铁掺杂TiO₂样品均为介孔纳米晶。TiO₂粉末中少量的Fe³⁺离子能显著提高其光催化活性。在铁与钛的最佳原子比为0.25时,通过该方法制备并在400℃煅烧的铁掺杂TiO₂粉末的光催化活性超过了Degussa P25(P25)两倍多。铁掺杂TiO₂粉末的高活性可归因于铁掺杂、大的BET比表面积和小的晶粒尺寸的协同效应。

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