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热喷涂法制备的La3+掺杂纳米TiO2粉末的表征
引用本文:雷阿利,徐大鹏,冯拉俊,朱广,李高红. 热喷涂法制备的La3+掺杂纳米TiO2粉末的表征[J]. 焊接学报, 2008, 29(8): 25-28,36
作者姓名:雷阿利  徐大鹏  冯拉俊  朱广  李高红
作者单位:西安理工大学,材料科学与工程学院,西安,710048
摘    要:采用等离子热喷涂法以钛酸四丁酯为主要原料制备出稀土离子掺杂的纳米TiO2光催化剂.通过XRD,XPS,TEM,UV-Vis等检测手段对样品进行表征,同时检测了其光催化性能,并分析了掺杂对TiO2的影响机理.结果表明,所制备的La3 掺杂纳米TiO2是锐钛矿相和金红石相混晶结构,粒径分布在10~50nm之间;La3 掺杂能够促进锐钛矿向金红石的转变,同时抑制TiO2晶粒的长大;La3 掺杂使TiO2紫外-可见吸收光谱发生红移;适量La3 掺杂能显著提高TiO2的光催化活性,最佳掺杂浓度为0.5%(与Ti原子摩尔比),甲基橙降解率在90min内可达到82.4%.比纯TiO2高出13.2%.

关 键 词:等离子喷涂  掺杂  镧离子
收稿时间:2007-12-18

Characterization of La3+ doped TiO2 prepared by plasma spraying
LEI Ali,XU Dapeng,FENG Lajun,ZHU Guang and LI Gaohong. Characterization of La3+ doped TiO2 prepared by plasma spraying[J]. Transactions of The China Welding Institution, 2008, 29(8): 25-28,36
Authors:LEI Ali  XU Dapeng  FENG Lajun  ZHU Guang  LI Gaohong
Affiliation:School of Material Science and Engineering, Xi''an University of Technology, Xi''an, 710048, China,School of Material Science and Engineering, Xi''an University of Technology, Xi''an, 710048, China,School of Material Science and Engineering, Xi''an University of Technology, Xi''an, 710048, China,School of Material Science and Engineering, Xi''an University of Technology, Xi''an, 710048, China and School of Material Science and Engineering, Xi''an University of Technology, Xi''an, 710048, China
Abstract:TiO2 nanopowders doped by the lanthanum trivalent ion were prepared by plasma thermal spray with solution of titanium tetra-tert-butoxide.And TiO2 were characterized by XRD, XPS TEM and UV-Vis.The photocatalytic activities were also investigated. The results showed that the prepared doped powders are the mixture structure of anatase and rutile.La3+ doping can promote the transformation of TiO2 from anatase to rutile, at the same time, it can restrain TiO2 particle growing up.La3+ doping greatly increases the photocatalytic activity of TiO2, the optimal doping concentration was 0.5%, and the degradation rate of methyl orange is 82.4%, which is 13.2% higher than that with pure TiO2.
Keywords:TiO2
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