School of Materials Science and Engineering, Shaanxi University of Science and Technology , Xi'an 710021, Shaanxi, People's Republic of China.
Materials Research Institute, School of Engineering and Materials Science, Queen Mary University of London , Mile End Road, London E1 4NS, United Kingdom.
ACS Appl Mater Interfaces. 2017 Jul 26;9(29):24518-24526. doi: 10.1021/acsami.7b03523. Epub 2017 Jul 13.
We have used a ferroelectric BaTiO substrate with a hematite (α-FeO) nanostructured surface to form a heterogeneous BaTiO/α-FeO photocatalyst. In this study we show that varying the mass ratio of α-FeO on BaTiO has a significant influence on photoinduced decolorization of rhodamine B under simulated sunlight. The highest photocatalytic activity was obtained for BaTiO-FeO-0.001M, with the lowest mass ratio of α-FeO in our study. This catalyst exhibited a 2-fold increase in performance compared to pure BaTiO and a 5-fold increase when compared to the higher-surface-area pure α-FeO. The increases in performance become more marked upon scaling for the lower surface area of the heterostructured catalyst. Performance enhancement is associated with improved charge-carrier separation at the interface between the ferroelectric surface, which exhibits ferroelectric polarization, and the hematite. Increasing the mass ratio of hematite increases the thickness of this layer, lowers the number of triple-point locations, and results in reduced performance enhancement. We show that the reduced performance is due to a lack of light penetrating into BaTiO and to relationships between the depolarization field from the ferroelectric and carriers in the hematite. Our findings demonstrate that it is possible to use the built-in electric field of a ferroelectric material to promote charge-carrier separation and boost photocatalytic efficiency.
我们使用具有赤铁矿(α-FeO)纳米结构表面的铁电 BaTiO 衬底来形成异质 BaTiO/α-FeO 光催化剂。在这项研究中,我们表明,改变 BaTiO 上 α-FeO 的质量比对模拟阳光下罗丹明 B 的光诱导褪色有显著影响。在我们的研究中,α-FeO 质量比最低的 BaTiO-FeO-0.001M 表现出最高的光催化活性。与纯 BaTiO 相比,该催化剂的性能提高了 2 倍,与具有更高表面积的纯α-FeO 相比,提高了 5 倍。对于较低表面积的异质结构催化剂,性能的提高更为显著。性能的增强与铁电表面(表现出铁电极化)和赤铁矿之间界面处载流子分离的改善有关。增加赤铁矿的质量比会增加这一层的厚度,降低三点位置的数量,并导致性能增强降低。我们表明,性能降低是由于光无法穿透到 BaTiO 中以及铁电体的去极化场与赤铁矿中的载流子之间的关系所致。我们的发现表明,利用铁电材料的内置电场可以促进载流子分离并提高光催化效率。
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