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首页> 外文期刊>Nanotechnology >A metallic metal oxide (Ti5O9)-metal oxide (TiO2) nanocomposite as the heterojunction to enhance visible-light photocatalytic activity
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A metallic metal oxide (Ti5O9)-metal oxide (TiO2) nanocomposite as the heterojunction to enhance visible-light photocatalytic activity

机译:金属金属氧化物(Ti5O9)-金属氧化物(TiO2)纳米复合材料作为异质结,可增强可见光的光催化活性

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Coupling titanium dioxide (TiO2) with other semiconductors is a popular method to extend the optical response range of TiO2 and improve its photon quantum efficiency, as coupled semiconductors can increase the separation rate of photoinduced charge carriers in photocatalysts. Differing from normal semiconductors, metallic oxides have no energy gap separating occupied and unoccupied levels, but they can excite electrons between bands to create a high carrier mobility to facilitate kinetic charge separation. Here, we propose the first metallic metal oxide-metal oxide (Ti5O9-TiO2) nanocomposite as a heterojunction for enhancing the visible-light photocatalytic activity of TiO2 nanoparticles and we demonstrate that this hybridized TiO2-Ti5O9 nanostructure possesses an excellent visible-light photocatalytic performance in the process of photodegrading dyes. The TiO2-Ti5O9 nanocomposites are synthesized in one step using laser ablation in liquid under ambient conditions. The as-synthesized nanocomposites show strong visible-light absorption in the range of 300-800 nm and high visible-light photocatalytic activity in the oxidation of rhodamine B. They also exhibit excellent cycling stability in the photodegrading process. A working mechanism for the metallic metal oxide-metal oxide nanocomposite in the visible-light photocatalytic process is proposed based on first-principle calculations of Ti5O9. This study suggests that metallic metal oxides can be regarded as partners for metal oxide photocatalysts in the construction of heterojunctions to improve photocatalytic activity.
机译:二氧化钛(TiO2)与其他半导体的耦合是一种扩展TiO2的光学响应范围并提高其光子量子效率的流行方法,因为耦合的半导体可以提高光催化剂中光致电荷载流子的分离率。与普通的半导体不同,金属氧化物没有能隙,可以将占据和未占据的能级分开,但是它们可以激发能带之间的电子,从而产生高的载流子迁移率,从而促进动电荷的分离。在这里,我们提出了第一种金属金属氧化物-金属氧化物(Ti5O9-TiO2)纳米复合材料作为异质结,以增强TiO2纳米颗粒的可见光催化活性,并且我们证明了这种杂化的TiO2-Ti5O9纳米结构具有出色的可见光光催化性能。在光降解染料的过程中。 TiO2-Ti5O9纳米复合材料是在环境条件下在液体中使用激光烧蚀一步合成的。合成后的纳米复合材料在罗丹明B的氧化中显示出300-800 nm范围内的强可见光吸收和高可见光光催化活性。它们在光降解过程中也表现出出色的循环稳定性。基于Ti5O9的第一性原理计算,提出了可见光光催化过程中金属金属氧化物-金属氧化物纳米复合材料的工作机理。这项研究表明,在异质结的构建中,金属金属氧化物可被视为金属氧化物光催化剂的伴侣,以提高光催化活性。

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