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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Crystalline Mixed Phase (Anatase/Rutile) Mesoporous Titanium Dioxides for Visible Light Photocatalytic Activity
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Crystalline Mixed Phase (Anatase/Rutile) Mesoporous Titanium Dioxides for Visible Light Photocatalytic Activity

机译:结晶混合相(锐钛矿/金红石)介孔二氧化钛对可见光的光催化活性

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The high photocatalytic activity of mixed phase (80% anatase and 20% rutile) titanium dioxide (Degussa P25) has attracted a great deal of interest in recent years. However, its low efficiency in visible light and nonporous nature limits the potential use and capabilities. Here, we report a novel preparation method for crystalline, thermally stable (up to 800 degrees C) TiO2 materials with tunable anatase/rutile phase compositions (0-100%) and monomodal mesoporosity. The control of the phase compositions was achieved by framework vanadium doping and various applied heat treatments. Vanadium (0% to 10% doping) decreased the anatase-rutile transformation temperature (from 1000 to 600 degrees C) and shifted the absorption band to the visible light region (narrowed the band gap). The mesopore structure was preserved in mixed phase TiO2. These materials are members of the recently discovered University of Connecticut (UCT) mesoporous materials family. The UCT materials are randomly packed nanoparticle aggregates and mesopores that are formed by connected intraparticle voids. The synthesis of UCT materials relies on controlling the sol-gel chemistry of inorganic sols in inverse surfactant micelles and NOx (nitric oxides) chemistry. The visible light (>400 nm) photocatalytic activity of mixed phase mesoporous titania samples was studied. The highest photocatalytic activity was obtained by mesoporous titania with 61% anatase and 39% rutile composition. The catalyst can totally remove (100% conversion) methylene blue dye (MB) under visible light irradiation in 2 h, whereas commercial P25 was only able to remove 28% under the same reaction conditions. The mixed phase mesoporous material also shows high photocatalytic activity for degrading phenol and 4-chlorophenol under visible light irradiation. Moreover, the good crystallinity, high surface area (94 m(2)/g), and monomodal mesoporosity (around 5 nm) can be preserved even after three cycles of photocatalytic reactions.
机译:近年来,混合相(80%锐钛矿和20%金红石)钛白粉(Degussa P25)的高光催化活性引起了人们的极大兴趣。但是,其在可见光下的低效率和无孔性质限制了其潜在的用途和功能。在这里,我们报告了一种新型的制备方法,该方法用于制备具有可调锐钛矿/金红石相组成(0-100%)和单峰介孔性的晶体,热稳定(高达800摄氏度)的TiO2材料。通过骨架钒掺杂和各种应用的热处理来控制相组成。钒(0%到10%掺杂)降低了锐钛型金红石转化温度(从1000摄氏度到600摄氏度),并将吸收带转移到可见光区域(带隙变窄)。中孔结构保留在混合相TiO2中。这些材料是最近发现的康涅狄格大学(UCT)介孔材料家族的成员。 UCT材料是随机堆积的纳米颗粒聚集体和中孔,它们是由相连的颗粒内空隙形成的。 UCT材料的合成取决于逆表面活性剂胶束和NOx(一氧化氮)化学中无机溶胶的溶胶-凝胶化学控制。研究了混合相介孔二氧化钛样品的可见光(> 400 nm)光催化活性。具有61%锐钛矿和39%金红石组成的中孔二氧化钛获得最高的光催化活性。在可见光照射下2小时内,该催化剂可以完全去除(100%转化率)亚甲基蓝染料(MB),而商用P25在相同的反应条件下只能去除28%。混合相介孔材料在可见光照射下还表现出较高的光催化活性,可降解苯酚和4-氯苯酚。此外,即使经过三个光催化反应周期,仍可以保持良好的结晶度,高表面积(94 m(2)/ g)和单峰介孔率(约5 nm)。

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