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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Facile preparation of nanostructured α-Fe2O3 thin films with enhanced photoelectrochemical water splitting activity
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Facile preparation of nanostructured α-Fe2O3 thin films with enhanced photoelectrochemical water splitting activity

机译:易于制备具有增强的光电化学水分解活性的纳米结构α-Fe2O3薄膜

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We report on the use of a facile electrospray technique for the synthesis of α-Fe2O3 thin films on a FTO substrate for photoelectrochemical (PEC) water splitting. The effect of synthesis parameters such as substrate temperature, discharge potential and post-heat treatment on morphology, particle size and PEC performance of α-Fe2O3 films were investigated. With an increase in substrate temperature, the surface morphology of the α-Fe2O3 film was altered from a packed worm-like surface to highly porous nanostructures. XRD analysis revealed that the (110) grain orientation of the film was transformed to the (104) grain orientation at 300 °C, due to the oxidation of the precursor at the surface of the substrate. Raman spectroscopy and XPS analysis indicated the presence of highly pure α-Fe2O3 in the film. By changing the discharge potential, the size of particles in the film was reduced to a minimum of 23 nm. Under optimized conditions the nanostructured α-Fe2O3 films showed a water splitting photocurrent of ~0.6 mA cm~(-2) at 1.23 V versus RHE under standard illumination conditions (AM 1.5 G 100 mW cm~(-2)), and an incident photon to current efficiency (IPCE) of 13% at 350 nm (at 1.4 V versus RHE) which are among the best results obtained for undoped α-Fe2O3 photoanodes. This enhanced PEC performance can be attributed to the efficient charge separation at the α-Fe2O3-electrolyte interface due to the larger interracial area of small-sized particles in the film. This study thus provides a simple route for the synthesis of highly active α-Fe2O3 thin films that can be extended to metal doped films such as Ti-doped α-Fe2O3.
机译:我们报告了使用一种简便的电喷雾技术在FTO基板上合成α-Fe2O3薄膜以进行光电化学(PEC)水分解。研究了合成参数如衬底温度,放电电位和后热处理对α-Fe2O3薄膜的形貌,粒径和PEC性能的影响。随着基板温度的升高,α-Fe2O3膜的表面形态从堆积的蠕虫状表面变为高度多孔的纳米结构。 XRD分析表明,由于前体在基板表面上的氧化,在300℃下,膜的(110)晶向转变为(104)晶向。拉曼光谱和XPS分析表明膜中存在高纯度的α-Fe2O3。通过改变放电电位,膜中的颗粒尺寸减小到最小23nm。在最佳条件下,纳米结构的α-Fe2O3膜在1.23 V的条件下相对于RHE在标准照明条件下(AM 1.5 G 100 mW cm〜(-2))表现出约0.6 mA cm〜(-2)的水分解光电流。在350 nm处光子电流效率(IPCE)为13%(相对于RHE为1.4 V时),这是未掺杂α-Fe2O3光电阳极获得的最佳结果。增强的PEC性能可归因于膜中小尺寸颗粒的较大面积,从而在α-Fe2O3-电解质界面处实现了有效的电荷分离。因此,这项研究为合成高活性的α-Fe2O3薄膜提供了一条简单的途径,该薄膜可以扩展到掺杂金属的薄膜,例如掺Ti的α-Fe2O3。

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