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首页> 外文期刊>International journal of hydrogen energy >Effect of Ti- or Si-doping on nanostructure and photo-electro-chemical activity of electro-spun iron oxide fibres
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Effect of Ti- or Si-doping on nanostructure and photo-electro-chemical activity of electro-spun iron oxide fibres

机译:钛或硅掺杂对电纺氧化铁纤维纳米结构和光电化学活性的影响

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摘要

Pure and titanium- or silicon-doped iron oxide fibres are synthesised by electro-spinning over conductive fluorine doped tin oxide (FTO)/glass substrates, and the effect of the type of dopant on the morphology of the fibres and the crystalline phase of the oxide is investigated by means of several complementary characterisation techniques. Results show that in the absence of dopant, highly porous fibres, consisting of interconnected polycrystalline hematite grains, are obtained. Doping with titanium does not influence the crystalline phase of the oxide, but the better packed structure of the fibres causes them to detach from the support. Silicon-doping results in a different phase of the host oxide (maghemite) and good adhesion of the fibres to the FTO/glass support. Very preliminary tests to evaluate the photo -electrochemical activity of the samples demonstrate that the photocurrent measured with Si-doped maghemite fibres is 53% higher with respect to that obtained with pure hematite fibres, as an effect of the nearly threefold increase in the donor concentration brought about by doping. This, in turn, improves the charge transfer at the interface, leading to a higher charge injection from the electrode to the electrolyte and, thus, to a greater photo-oxidation efficiency. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过在导电的氟掺杂氧化锡(FTO)/玻璃基板上进行电纺丝,以及掺杂剂类型对纤维形态和结晶相的影响,可以合成纯钛和钛或硅掺杂的氧化铁纤维。通过几种互补的表征技术研究了氧化铁。结果表明,在没有掺杂剂的情况下,获得了由相互连接的多晶赤铁矿晶粒组成的高度多孔的纤维。掺杂钛不会影响氧化物的晶相,但纤维的较好堆积结构会使它们从载体上脱离。硅掺杂会导致主体氧化物(磁赤铁矿)的相变不同,并使纤维与FTO /玻璃载体的附着力良好。评估样品的光电化学活性的非常初步的测试表明,掺杂硅的磁赤铁矿纤维测得的光电流比纯赤铁矿纤维测得的光电流高53%,这是施主浓度增加近三倍的结果通过掺杂带来的。反过来,这改善了界面处的电荷转移,导致从电极到电解质的更高的电荷注入,并因此导致更高的光氧化效率。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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