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通过表面维度对钛酸锶纳米立方体上光催化水氧化的选择性控制

Selectivity Control of the Photo-Catalytic Water Oxidation on SrTiO Nanocubes via Surface Dimensionality.

作者信息

Macounová Kateřina Minhová, Nebel Roman, Klusáčková Monika, Klementová Mariana, Krtil Petr

机构信息

J. Heyrovský Institute of Physical Chemistry of the Czech Academy of Sciences , Dolejškova 3 , 18223 Prague , Czech Republic.

Institute of Physics of the Czech Academy of Sciences , Na Slovance 2 , 182 21 Prague , Czech Republic.

出版信息

ACS Appl Mater Interfaces. 2019 May 8;11(18):16506-16516. doi: 10.1021/acsami.9b00342. Epub 2019 Apr 29.

Abstract

The role of surface dimensionality in photo-electrochemical water oxidation was studied for different-sized SrTiO nanocubes. The band gap illumination of strontium titanate electrodes results in anodic current; the photo-current appears at a bias of ca. 220 mV with respect to flat-band potential. The bias needed to record anodic photo-current increases with pH, reflecting the change in the protonation of surface oxygen atoms. The photo-electrochemical activity of SrTiO nanocubes is size-dependent and increases with increasing particle size. Semiquantitative analysis of the observed photo-currents combined with mass spectrometric detection of the reaction products shows that the contact of water with illuminated SrTiO nanocubes leads to the formation of oxygen, hydrogen peroxide, and ozone. Oxygen and ozone are the primary products of the water oxidation proceeding on {100}-oriented SrTiO faces and their fractions increase with increasing particle size. The hydrogen peroxide is simultaneously produced via oxygen reduction at the low-dimensionality sites (crystal edges, vertices), the abundance of which increases with decreasing particle size.

摘要

针对不同尺寸的SrTiO纳米立方体,研究了表面维度在光电化学水氧化中的作用。钛酸锶电极的带隙光照会产生阳极电流;光电流在相对于平带电位约220 mV的偏压下出现。记录阳极光电流所需的偏压随pH值增加,这反映了表面氧原子质子化的变化。SrTiO纳米立方体的光电化学活性与尺寸有关,并随粒径增大而增加。对观察到的光电流进行半定量分析,并结合反应产物的质谱检测表明,水与光照的SrTiO纳米立方体接触会导致氧气、过氧化氢和臭氧的形成。氧气和臭氧是在{100}取向的SrTiO表面上进行水氧化的主要产物,它们的比例随粒径增大而增加。过氧化氢则是通过低维位点(晶体边缘、顶点)处的氧还原同时产生的,其丰度随粒径减小而增加。

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