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配体交换辅助形成 Au/TiO2 肖特基接触用于可见光光催化。

Ligand-exchange assisted formation of Au/TiO2 Schottky contact for visible-light photocatalysis.

机构信息

Center for Materials Chemistry, Frontier Institute of Science and Technology, Xi'an Jiaotong University , Xi'an, Shaanxi 710054, China.

出版信息

Nano Lett. 2014 Nov 12;14(11):6731-6. doi: 10.1021/nl503585m. Epub 2014 Oct 22.

Abstract

Plasmonic noble metal nanoparticles have emerged as a promising material in sensitizing wide-bandgap semiconductors for visible-light photocatalysis. Conventional methods in constructing such heterocatalysts suffer from either poor control over the size of the metal nanoparticles or inefficient charge transfer through the metal/semiconductor interface, which limit their photocatalytic activity. To solve this problem, in this work we construct Au/TiO2 photocatalysts by depositing presynthesized colloidal Au nanoparticles with well-controlled sizes to TiO2 nanocrystals and then removing capping ligands on the Au surface through a delicately designed ligand-exchange method, which leads to close Au/TiO2 Schottky contact after a mild annealing process. Benefiting from this unique synthesis strategy, the obtained photocatalysts show superior activity to conventionally prepared photocatalysts in dye decomposition and water-reduction hydrogen production under visible-light illumination. This study not only opens up new opportunities in designing photoactive materials with high stability and enhanced performance for solar energy conversion but also provides a potential solution for the well-recognized challenge in cleaning capping ligands from the surface of colloidal catalyst nanoparticles.

摘要

等离子体贵金属纳米粒子在敏化宽带隙半导体可见光光催化方面已经成为一种很有前途的材料。构建这种异质催化剂的传统方法要么难以控制金属纳米粒子的尺寸,要么难以通过金属/半导体界面有效地传递电荷,这限制了它们的光催化活性。为了解决这个问题,在这项工作中,我们通过将具有良好控制尺寸的预先合成的胶体金纳米粒子沉积到 TiO2 纳米晶体上,然后通过精心设计的配体交换方法去除 Au 表面的帽状配体,在温和退火过程后形成紧密的 Au/TiO2 肖特基接触,从而构建了 Au/TiO2 光催化剂。受益于这种独特的合成策略,与传统方法制备的光催化剂相比,所获得的光催化剂在可见光照射下染料分解和水还原制氢方面表现出更高的活性。这项研究不仅为设计具有高稳定性和增强性能的太阳能转换光活性材料开辟了新的机会,而且为从胶体催化剂纳米粒子表面清除帽状配体这一公认的挑战提供了一种潜在的解决方案。

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