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有序介孔黑 TiO(2)作为高效析氢光催化剂。

Ordered mesoporous black TiO(2) as highly efficient hydrogen evolution photocatalyst.

机构信息

Key Laboratory of Functional Inorganic Material Chemistry, Ministry of Education of the People's Republic of China, Heilongjiang University , Harbin 150080, P. R. China.

出版信息

J Am Chem Soc. 2014 Jul 2;136(26):9280-3. doi: 10.1021/ja504802q. Epub 2014 Jun 23.

Abstract

Mesoporous TiO2 has gained increasing interest because of its outstanding properties and promising applications in a wide range of fields. Herein, we report the facile synthesis of ordered mesoporous black TiO2 (OMBT) materials, which exhibit excellent photocatalytic hydrogen evolution performances. In this case, the employment of a thermally stable and high-surface-area mesoporous TiO2 as the hydrogenation precursor is the key for fabricating the OMBT materials, which not only facilitate H2 gas diffusion into TiO2 and interaction with their structures but also maintain the ordered mesoporous structures as well as inhibit the phase transformation (from anatase to rutile) and crystal growth during hydrogenation at 500 °C. The resultant OMBT materials possess a relatively high surface area of ∼124 m(2) g(-1) and a large pore size and pore volume of ∼9.6 nm and 0.24 cm(3) g(-1), respectively. More importantly, the OMBT materials can extend the photoresponse from ultraviolet to visible and infrared light regions and exhibit a high solar-driven hydrogen production rate (136.2 μmol h(-1)), which is almost two times as high as that of pristine mesoporous TiO2 (76.6 μmol h(-1)).

摘要

介孔 TiO2 因其优异的性能和在广泛领域中的应用前景而受到越来越多的关注。在此,我们报道了有序介孔黑 TiO2(OMBT)材料的简便合成方法,该材料表现出优异的光催化析氢性能。在这种情况下,使用热稳定和高表面积的介孔 TiO2 作为氢化前体是制备 OMBT 材料的关键,这不仅有利于 H2 气体扩散到 TiO2 中并与其结构相互作用,而且还能保持有序介孔结构,抑制氢化过程中的相转变(从锐钛矿到金红石)和晶体生长,温度为 500°C。所得的 OMBT 材料具有相对较高的比表面积(约 124 m2/g)、较大的孔径和孔体积(分别为 9.6nm 和 0.24cm3/g)。更重要的是,OMBT 材料可以将光响应从紫外光扩展到可见光和红外光区域,并表现出高的太阳能驱动制氢速率(136.2μmol h-1),几乎是原始介孔 TiO2(76.6μmol h-1)的两倍。

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