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Controllable synthesis of brookite/anatase/rutile TiO2 nanocomposites and single-crystalline rutile nanorods array

机译:板钛矿/锐钛矿/金红石型TiO2纳米复合材料和单晶金红石型纳米棒阵列的可控合成

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The synthesis of nano-TiO2 materials have attracted intense interest due to their importance in a wide area of applications. In this study, we report a facile method to synthesize mixed-phase TiO2 nanocomposites by using a one-step approach under mild solvothermal conditions. Differently from previous reports, this method not only yields rutile/brookite/anatase TiO2 nanocomposites with high photocatalytic activities, but also can obtain highly oriented single-crystal rutile nanorod arrays selectively deposited on FTO. These products were characterized by XRD, FTIR, FESEM, TEM, HRTEM, and BET. Results indicate that in the brookite/anatase/rutile coexisting nanopowders, the brookite and anatase phases were crystallized into irregular nanoparticles <20 nm in diameter, whereas the rutile phase was crystallized into single-crystalline nanorods ~20 nm in diameter and 100 to 500 nm in length. The single-crystalline rutile nanorods could form a film with controllable thickness up to ~7 μm. The sample with 29.9% anatase, 27.9% brookite, 42.2% rutile was shown to have the highest photocatalytic activity, yielding over 90% bleaching of methyl orange solution in 20 min. The degradation rate constant k of this sample was 0.10180 min~(-1), almost twice as high as that of P25 {k = 0.05397 min~(-1)). DFT calculations were used to confirm the band structures and density of states in brookite, anatase, and rutile phases.
机译:纳米TiO2材料的合成因其在广泛的应用领域中的重要性而引起了人们的极大兴趣。在这项研究中,我们报告了一种在温和的溶剂热条件下通过一步法合成混合相TiO2纳米复合材料的简便方法。与以前的报道不同,此方法不仅可以产生具有高光催化活性的金红石/板钛矿/锐钛矿型TiO2纳米复合材料,而且可以获得选择性地沉积在FTO上的高取向单晶金红石纳米棒阵列。这些产品通过XRD,FTIR,FESEM,TEM,HRTEM和BET进行表征。结果表明,在板钛矿/锐钛矿/金红石共存的纳米粉中,板钛矿和锐钛矿相结晶成直径小于20 nm的不规则纳米颗粒,而金红石相结晶成直径约20 nm且直径在100至500 nm的单晶纳米棒。在长度上。单晶金红石型纳米棒可以形成厚度可控的薄膜,厚度可达〜7μm。具有29.9%锐钛矿,27.9%板钛矿,42.2%金红石的样品显示出最高的光催化活性,在20分钟内产生了90%以上的甲基橙溶液漂白。该样品的降解速率常数k为0.10180 min〜(-1),几乎是P25的两倍(k = 0.05397 min〜(-1))。 DFT计算用于确认板钛矿,锐钛矿和金红石相的能带结构和状态密度。

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