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铁电偶极子对异质结构 BaTiO/a-FeO 光催化活性的影响。

Influence of ferroelectric dipole on the photocatalytic activity of heterostructured BaTiO/a-FeO.

机构信息

School of Materials Science and Engineering, Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, Shaanxi University of Science and Technology, Xi'an 710021, Shaanxi, People's Republic of China. Materials Research Institute and School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, United Kingdom.

出版信息

Nanotechnology. 2019 Jun 21;30(25):255702. doi: 10.1088/1361-6528/ab0b00. Epub 2019 Feb 27.

Abstract

Using BaTiO as a model ferroelectric material we investigated the influence of the ferroelectric dipole on the photocatalytic activity of a heterogeneous BaTiO/α-FeO photocatalyst. Two distinct BaTiO samples were used: BTO and BTO-A. The latter consists more ferroelectric tetragonal phase and thus stronger ferroelectricity. It was found that under identical experimental conditions, the photodecolourisation rate of a target dye using BTO-A/α-FeO under visible light was 1.3 times that of BTO/α-FeO. Photoelectrochemical and photoluminescence analysis confirmed a more effective charge carrier separation in BTO-A/α-FeO. Considering solely the photoexcitation of α-FeO in the composite photocatalysts under visible light and the similar microstructures of the two catalysts, we propose that the enhanced decolourisation rate when using BTO-A/α-FeO is due to the improved charge carrier separation and extended charge carrier lifetime arising from an interaction between the ferroelectric dipole and the carriers in α-FeO. Our results demonstrate a new process to use a ferroelectric dipole to manipulate the charge carrier transport, overcome recombination, and extend the charge carrier lifetime of the surface material in a heterogeneous catalyst system.

摘要

我们以 BaTiO 作为模型铁电体材料,研究了铁电极化对异质 BaTiO/α-FeO 光催化剂光催化活性的影响。使用了两种不同的 BaTiO 样品:BTO 和 BTO-A。后者包含更多的铁电四方相,因此具有更强的铁电性。结果发现,在相同的实验条件下,使用 BTO-A/α-FeO 可见光下目标染料的光褪色速率是 BTO/α-FeO 的 1.3 倍。光电化学和光致发光分析证实,BTO-A/α-FeO 中载流子的分离更为有效。仅考虑可见光下复合光催化剂中 α-FeO 的光激发以及两种催化剂的相似微观结构,我们提出,使用 BTO-A/α-FeO 时增强的褪色速率是由于铁电极化与 α-FeO 中的载流子之间的相互作用导致载流子分离和载流子寿命延长。我们的结果证明了一种新的过程,可以利用铁电极化来操纵电荷载流子输运、克服复合并延长异质催化剂体系中表面材料的电荷载流子寿命。

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