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Nanocrystalline Brookite with Enhanced Stability and Photocatalytic Activity: Influence of Lanthanum(III) Doping

机译:具有增强的稳定性和光催化活性的纳米晶白钛矿:镧(III)掺杂的影响

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摘要

Metastable TiO2 polymorphs are more promising materials than rutile for specific applications such as photocatalysis or catalysis support. This was clearly demonstrated for the anatase phase but still under consideration for brookite, which is difficult to obtain as pure phase. Moreover, the surface doping of anatase with lanthanum ions is known to both increase the thermal stability of the metastable phase and improve its photo catalytic activity. In this study, TiO2nanoparticles of almost only the brookite structure were prepared by a simple sol-gel procedure in aqueous solution. The nanoparticles were then doped with lanthanum (III) ions. The thermal stability of the nanoparticles was analyzed by X-ray diffraction and kinetic models were successfolly applied to quantify phases evolutions. The presence of surface-sorbed lanthanum(III) ions increased the phase stability of at least 200 °C and this temperature shift was attributed to the selective phase stabilization of metastable TiO2 polymorphs. Moreover, the combination of the surfece doping ions and the thermal treatment induces the vanishing of the secondary anatase phase, and the photocatalytic tests on the doped brookite nanoparticles demonstrated that the doping increased photocatalytic activity and that the extent depended on the duration of the sintering treatment.
机译:对于特定的应用(例如光催化或催化载体),亚稳的TiO2多晶型物比金红石是更有前途的材料。对于锐钛矿相已经清楚地证明了这一点,但是对于难以作为纯相获得的板钛矿仍在考虑中。此外,已知用镧离子对锐钛矿进行表面掺杂既可以提高亚稳相的热稳定性,又可以提高其光催化活性。在这项研究中,几乎只有板钛矿结构的TiO2纳米颗粒是通过简单的溶胶-凝胶法在水溶液中制备的。然后将纳米颗粒掺杂镧(III)离子。通过X射线衍射分析了纳米粒子的热稳定性,并成功应用了动力学模型来量化相的演变。表面吸附的镧(III)离子的存在增加了至少200°C的相稳定性,并且这种温度变化归因于亚稳TiO2多晶型物的选择性相稳定。此外,表面掺杂离子和热处理的组合诱导了第二锐钛矿相的消失,对掺杂的板钛矿纳米粒子的光催化试验表明,掺杂增加了光催化活性,其程度取决于烧结处理的持续时间。 。

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