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Enhanced photocatalytic degradation of VOCs using Ln(3+)-TiO2 catalysts for indoor air purification

机译:使用Ln(3 +)-TiO2催化剂增强VOCs的光催化降解以净化室内空气

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Two types of lanthanide ion-doped titanium dioxide (Ln(3+)-TiO2) catalysts including La3+-TiO2 and Nd3+-TiO2 were prepared by a sol-gel method. The effects of the lanthanide ion doping on the crystal structure, surface area, adsorption properties, pore size distribution, and surface chemical state of the catalysts were investigated by means of XRD, BET, and XPS. As results, the crystal size decreased significantly, while the specific surface area, t-plot total surface area, micropore volume, and the total pore volume increased owing to the lanthanide ion doping. The nitrogen adsorption-desorption isotherms of the catalysts showed that the N-2 adsorption ability of the Ln(3+)-TiO2 catalysts was better than the TiO2 catalyst. Among them, the 0.7% Ln(3+)-TiO2 catalysts demonstrated the highest adsorption ability. The photocatalytic activity of the catalysts was investigated in the experiments of the photocatalytic degradation of benzene, toluene, ethylbenzene and o-xylene (BTEX) in a gaseous phase. The photocatalytic efficiency of the TiO2 catalysts with the lanthanide ion doping was remarkably enhanced by BTEX removal. The 1.2% Ln(3+)-TiO2 catalysts achieved the highest photocatalytic activity. The enhanced photodegradation of BTEX is possibly due to the improved adsorption ability and the enhanced electron-hole pairs separation due to the presence of Ti3+ on the surface of Ln(3+)- TiO2 catalysts and the electron transfer between the conduction band/defect level and lanthanide crystal field state. © 2004 Elsevier Ltd. All rights reserved.
机译:采用溶胶-凝胶法制备了La3 + -TiO2和Nd3 + -TiO2两种镧系离子掺杂二氧化钛(Ln(3 +)-TiO2)催化剂。借助XRD,BET和XPS研究了镧系元素离子掺杂对催化剂的晶体结构,表面积,吸附性能,孔径分布和表面化学态的影响。结果,由于镧系元素离子掺杂,晶体尺寸显着减小,而比表面积,t-图总表面积,微孔体积和总孔体积增加。催化剂的氮吸附-解吸等温线表明,Ln(3 +)-TiO2催化剂的N-2吸附能力优于TiO2催化剂。其中,0.7%Ln(3 +)-TiO2催化剂表现出最高的吸附能力。在气相中苯,甲苯,乙苯和邻二甲苯(BTEX)的光催化降解实验中,研究了催化剂的光催化活性。 BTEX的去除显着提高了镧系元素掺杂对TiO2催化剂的光催化效率。 1.2%Ln(3 +)-TiO2催化剂实现了最高的光催化活性。 BTEX的光降解增强可能是由于提高的吸附能力以及由于Ln(3 +)-TiO2催化剂表面上存在Ti3 +以及电导带/缺陷能级之间的电子转移引起的电子孔对分离增强和镧系元素的晶体场态。 &复制; 2004 Elsevier Ltd.保留所有权利。

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