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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Tensile strain for band engineering of SrTiO3 for increasing photocatalytic activity to water splitting
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Tensile strain for band engineering of SrTiO3 for increasing photocatalytic activity to water splitting

机译:SRTIO3带工程的拉伸应变,用于将光催化活性增加到水分裂

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SrTiO3 is a well-known highly active photocatalyst with high energy conversion efficiency. In this study, we investigated the formation of oxygen vacancy by using the chemo-mechanical effect that was introduced by the dispersion of metal particles into grain and photocatalytic activity to water splitting. Au dispersion on SrTiO3 followed by sintering treatment was studied for introduction of chemo-mechanical strain because of a different thermal expansion coefficient; the introduced chemo-mechanical strain generated oxygen vacancy in SrTiO3. Thus, induced chemo-mechanical strain shows change in electronic band structure resulting in increasing lowest unoccupied molecular orbital (LUMO) level with increasing Au content. Since photoluminescence was significantly decreased by sintering after Au dispersion, the introduced strain effects may work for increasing a charge separation efficiency and adsorption site in water splitting. Therefore, the photocatalytic activity was much increased by sintering treatment after Au dispersion on SrTiO3.
机译:SRTIO3是一种具有高能量转换效率的众所周知的高活性光催化剂。在这项研究中,我们通过使用金属颗粒分散成晶粒和光催化活性的化学机械效应来研究氧空位的形成。研究了SRTIO3上的Au分散,然后研究了烧结处理,以引入化学机械菌株,因为具有不同的热膨胀系数;介绍的化学机械应变在SRTIO3中产生的氧空位。因此,诱导的化学机械应变显示电子带结构的变化,导致随着Au含量的增加而增加最低的未占用分子轨道(LumO)水平。由于在Au分散后通过烧结显着降低光致发光,因此引入的应变效应可以用于增加水分裂中的电荷分离效率和吸附位点。因此,在SRTIO3上的Au分散后烧结处理,光催化活性大大增加。

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